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A is correct. Public and private community strings are used within SNMP to read and write, respectively. B, C, and D are incorrect. B is incorrect because the choices are backwards. Private allows for writing configuration data, while public allows for reading MIB information. C and D are incorrect because they do not exist as community strings. Solution A is correct. Public and private community strings are used within SNMP to read and write, respectively. B, C, and D are incorrect. B is incorrect because the choices are backwards. Private allows for writing configuration data, while public allows for reading MIB information. C and D are incorrect because they do not exist as community strings..
A is correct. Public and private community strings are used within S.pdf
A is correct. Public and private community strings are used within S.pdf
Ankitagarwaleleraipu
4 ans it is periodic signal and Solution 4 ans it is periodic signal and.
4 ansit is periodic signal andSolution4 ansit is periodic .pdf
4 ansit is periodic signal andSolution4 ansit is periodic .pdf
Ankitagarwaleleraipu
30 30 Solution 30 30.
3030Solution3030.pdf
3030Solution3030.pdf
Ankitagarwaleleraipu
5 Solution 5.
5Solution5.pdf
5Solution5.pdf
Ankitagarwaleleraipu
1. The smart phone, computer, navigation system and digital scanner have Microchip technology in common. 2. 3. Solution 1. The smart phone, computer, navigation system and digital scanner have Microchip technology in common. 2. 3..
1. The smart phone, computer, navigation system and digital scanner .pdf
1. The smart phone, computer, navigation system and digital scanner .pdf
Ankitagarwaleleraipu
1-They have terrestrial adaptation and dominant sporophytic phase. 2-ovule is produced, but but it is not enclosed within ovary wall. 3- all are heterosporous(producing mega and microspores).microspore termed pollen grains make direct contact with the ovules . microgametophytes develops within the pollenwall)i.e endosporic) and without male sex organ, antheridium. megaspors bears megagametophyte which contain multicellular female sex organ (archegonium). 4-they dont require water for sperm to swim in to reach the egg, all gymnosperm have non flagellated sperms. 5-no double fertilization to produce endosperm . the endosperm nutritive tissue is haploid. 1-Dominant sporophytic phase. 2-ovule develops within ovary of a carpel, and enclosed by ovary wall. 3-All are heterosporous(producing mega and microspores).micro or male gametophytes develops within microspore (pollengrain) and without antheridium.megaspore bear mega or female gametophyes and without archegonium. the gametophytes of angiosperms are much reduced in size and cell number. the mature microgametophytes within the pollen grain consist of only three cells, and the mature megagametophytes within the ovule , in most angiosperm. consists of only seven to eight nuclei. 4-pollination is indirect in which pollen falls on the stigma of the carpel rather than directly on the ovules . 5-double fertilization occurs , to produce embryo as well as endosperm . the endosperm, nutritive tissue for the future embryo , is not haploid but triploid and forms after fertilization.gymnospermsAngiosperm 1-They have terrestrial adaptation and dominant sporophytic phase. 2-ovule is produced, but but it is not enclosed within ovary wall. 3- all are heterosporous(producing mega and microspores).microspore termed pollen grains make direct contact with the ovules . microgametophytes develops within the pollenwall)i.e endosporic) and without male sex organ, antheridium. megaspors bears megagametophyte which contain multicellular female sex organ (archegonium). 4-they dont require water for sperm to swim in to reach the egg, all gymnosperm have non flagellated sperms. 5-no double fertilization to produce endosperm . the endosperm nutritive tissue is haploid. 1-Dominant sporophytic phase. 2-ovule develops within ovary of a carpel, and enclosed by ovary wall. 3-All are heterosporous(producing mega and microspores).micro or male gametophytes develops within microspore (pollengrain) and without antheridium.megaspore bear mega or female gametophyes and without archegonium. the gametophytes of angiosperms are much reduced in size and cell number. the mature microgametophytes within the pollen grain consist of only three cells, and the mature megagametophytes within the ovule , in most angiosperm. consists of only seven to eight nuclei. 4-pollination is indirect in which pollen falls on the stigma of the carpel rather than directly on the ovules . 5-double fertilization occurs , to produce embryo as well as endosperm . th.
1-They have terrestrial adaptation and dominant sporophytic phase..pdf
1-They have terrestrial adaptation and dominant sporophytic phase..pdf
Ankitagarwaleleraipu
(1) Solution (1).
(1)Solution(1).pdf
(1)Solution(1).pdf
Ankitagarwaleleraipu
What does absense of MHC Class I indicate? Almost all nucleated cells will have MHC Class I molecules on their surface and their main role is to present foreign protein to cytotoxic T cells (Tc Cells) so that the cells which got infected can be cleared by these Tc cells. But in some cases, it has been observed that some tumor cells will escape killing or elimination by Tc cells by becoming MHC Class I negative, here they will not express MHC Class I molecules on their surface and thus there will not be any expression of tumor antigens to Tc cells and these will survive and will go on producing new cells and form the tumor. Like this MHC class I negative cells present within the primary tumor will develop into unnoticed micrometastases and will have an immunological equilibrium and succeeds in surviving in a dormant stage for long periods of time What does the presentation of tyrosinase indicate? The tyrosinase will cleave the tumor proteins and will express the melanoma antigens on the cell surface as peptides and overexpression of these antigens in tumor cells will result in an abnormally high density of specific peptide:MHC complexes on the cell surface making them immunogenic and provides them tolerance and is seen as tumor rejection in most of the cases. What dos decreased CTL infiltratioin indicate? It is the CD8+ cytotoxic T lymphocytes (CTLs) which will reject the tumor by infiltrating the solid tumors by recognizing the tumor antigens, and will kill those tumor cells. And to do this CTLs will try to infiltrate tumors in depth and it is done only when tumor cells express the cognate CTL antigen. If the tumor will not express the cognate antigen, CTL infiltration will not occur and the tumor cells cannot be killed and so the expression of tumor antigen on the cells will attract CTL infiltration, at the same time when the tumor antigens are not presented on these cells, it will decrease the CTL infiltration. Solution What does absense of MHC Class I indicate? Almost all nucleated cells will have MHC Class I molecules on their surface and their main role is to present foreign protein to cytotoxic T cells (Tc Cells) so that the cells which got infected can be cleared by these Tc cells. But in some cases, it has been observed that some tumor cells will escape killing or elimination by Tc cells by becoming MHC Class I negative, here they will not express MHC Class I molecules on their surface and thus there will not be any expression of tumor antigens to Tc cells and these will survive and will go on producing new cells and form the tumor. Like this MHC class I negative cells present within the primary tumor will develop into unnoticed micrometastases and will have an immunological equilibrium and succeeds in surviving in a dormant stage for long periods of time What does the presentation of tyrosinase indicate? The tyrosinase will cleave the tumor proteins and will express the melanoma antigens on the cell surface as peptides and overexpres.
What does absense of MHC Class I indicateAlmost all nucleated cel.pdf
What does absense of MHC Class I indicateAlmost all nucleated cel.pdf
Ankitagarwaleleraipu
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A is correct. Public and private community strings are used within SNMP to read and write, respectively. B, C, and D are incorrect. B is incorrect because the choices are backwards. Private allows for writing configuration data, while public allows for reading MIB information. C and D are incorrect because they do not exist as community strings. Solution A is correct. Public and private community strings are used within SNMP to read and write, respectively. B, C, and D are incorrect. B is incorrect because the choices are backwards. Private allows for writing configuration data, while public allows for reading MIB information. C and D are incorrect because they do not exist as community strings..
A is correct. Public and private community strings are used within S.pdf
A is correct. Public and private community strings are used within S.pdf
Ankitagarwaleleraipu
4 ans it is periodic signal and Solution 4 ans it is periodic signal and.
4 ansit is periodic signal andSolution4 ansit is periodic .pdf
4 ansit is periodic signal andSolution4 ansit is periodic .pdf
Ankitagarwaleleraipu
30 30 Solution 30 30.
3030Solution3030.pdf
3030Solution3030.pdf
Ankitagarwaleleraipu
5 Solution 5.
5Solution5.pdf
5Solution5.pdf
Ankitagarwaleleraipu
1. The smart phone, computer, navigation system and digital scanner have Microchip technology in common. 2. 3. Solution 1. The smart phone, computer, navigation system and digital scanner have Microchip technology in common. 2. 3..
1. The smart phone, computer, navigation system and digital scanner .pdf
1. The smart phone, computer, navigation system and digital scanner .pdf
Ankitagarwaleleraipu
1-They have terrestrial adaptation and dominant sporophytic phase. 2-ovule is produced, but but it is not enclosed within ovary wall. 3- all are heterosporous(producing mega and microspores).microspore termed pollen grains make direct contact with the ovules . microgametophytes develops within the pollenwall)i.e endosporic) and without male sex organ, antheridium. megaspors bears megagametophyte which contain multicellular female sex organ (archegonium). 4-they dont require water for sperm to swim in to reach the egg, all gymnosperm have non flagellated sperms. 5-no double fertilization to produce endosperm . the endosperm nutritive tissue is haploid. 1-Dominant sporophytic phase. 2-ovule develops within ovary of a carpel, and enclosed by ovary wall. 3-All are heterosporous(producing mega and microspores).micro or male gametophytes develops within microspore (pollengrain) and without antheridium.megaspore bear mega or female gametophyes and without archegonium. the gametophytes of angiosperms are much reduced in size and cell number. the mature microgametophytes within the pollen grain consist of only three cells, and the mature megagametophytes within the ovule , in most angiosperm. consists of only seven to eight nuclei. 4-pollination is indirect in which pollen falls on the stigma of the carpel rather than directly on the ovules . 5-double fertilization occurs , to produce embryo as well as endosperm . the endosperm, nutritive tissue for the future embryo , is not haploid but triploid and forms after fertilization.gymnospermsAngiosperm 1-They have terrestrial adaptation and dominant sporophytic phase. 2-ovule is produced, but but it is not enclosed within ovary wall. 3- all are heterosporous(producing mega and microspores).microspore termed pollen grains make direct contact with the ovules . microgametophytes develops within the pollenwall)i.e endosporic) and without male sex organ, antheridium. megaspors bears megagametophyte which contain multicellular female sex organ (archegonium). 4-they dont require water for sperm to swim in to reach the egg, all gymnosperm have non flagellated sperms. 5-no double fertilization to produce endosperm . the endosperm nutritive tissue is haploid. 1-Dominant sporophytic phase. 2-ovule develops within ovary of a carpel, and enclosed by ovary wall. 3-All are heterosporous(producing mega and microspores).micro or male gametophytes develops within microspore (pollengrain) and without antheridium.megaspore bear mega or female gametophyes and without archegonium. the gametophytes of angiosperms are much reduced in size and cell number. the mature microgametophytes within the pollen grain consist of only three cells, and the mature megagametophytes within the ovule , in most angiosperm. consists of only seven to eight nuclei. 4-pollination is indirect in which pollen falls on the stigma of the carpel rather than directly on the ovules . 5-double fertilization occurs , to produce embryo as well as endosperm . th.
1-They have terrestrial adaptation and dominant sporophytic phase..pdf
1-They have terrestrial adaptation and dominant sporophytic phase..pdf
Ankitagarwaleleraipu
(1) Solution (1).
(1)Solution(1).pdf
(1)Solution(1).pdf
Ankitagarwaleleraipu
What does absense of MHC Class I indicate? Almost all nucleated cells will have MHC Class I molecules on their surface and their main role is to present foreign protein to cytotoxic T cells (Tc Cells) so that the cells which got infected can be cleared by these Tc cells. But in some cases, it has been observed that some tumor cells will escape killing or elimination by Tc cells by becoming MHC Class I negative, here they will not express MHC Class I molecules on their surface and thus there will not be any expression of tumor antigens to Tc cells and these will survive and will go on producing new cells and form the tumor. Like this MHC class I negative cells present within the primary tumor will develop into unnoticed micrometastases and will have an immunological equilibrium and succeeds in surviving in a dormant stage for long periods of time What does the presentation of tyrosinase indicate? The tyrosinase will cleave the tumor proteins and will express the melanoma antigens on the cell surface as peptides and overexpression of these antigens in tumor cells will result in an abnormally high density of specific peptide:MHC complexes on the cell surface making them immunogenic and provides them tolerance and is seen as tumor rejection in most of the cases. What dos decreased CTL infiltratioin indicate? It is the CD8+ cytotoxic T lymphocytes (CTLs) which will reject the tumor by infiltrating the solid tumors by recognizing the tumor antigens, and will kill those tumor cells. And to do this CTLs will try to infiltrate tumors in depth and it is done only when tumor cells express the cognate CTL antigen. If the tumor will not express the cognate antigen, CTL infiltration will not occur and the tumor cells cannot be killed and so the expression of tumor antigen on the cells will attract CTL infiltration, at the same time when the tumor antigens are not presented on these cells, it will decrease the CTL infiltration. Solution What does absense of MHC Class I indicate? Almost all nucleated cells will have MHC Class I molecules on their surface and their main role is to present foreign protein to cytotoxic T cells (Tc Cells) so that the cells which got infected can be cleared by these Tc cells. But in some cases, it has been observed that some tumor cells will escape killing or elimination by Tc cells by becoming MHC Class I negative, here they will not express MHC Class I molecules on their surface and thus there will not be any expression of tumor antigens to Tc cells and these will survive and will go on producing new cells and form the tumor. Like this MHC class I negative cells present within the primary tumor will develop into unnoticed micrometastases and will have an immunological equilibrium and succeeds in surviving in a dormant stage for long periods of time What does the presentation of tyrosinase indicate? The tyrosinase will cleave the tumor proteins and will express the melanoma antigens on the cell surface as peptides and overexpres.
What does absense of MHC Class I indicateAlmost all nucleated cel.pdf
What does absense of MHC Class I indicateAlmost all nucleated cel.pdf
Ankitagarwaleleraipu
The probabilities must add up to one. Add the ones you have and subtract their sum from one to get the missing probability. P(4) = 1- .74 = 0.26 Solution The probabilities must add up to one. Add the ones you have and subtract their sum from one to get the missing probability. P(4) = 1- .74 = 0.26.
The probabilities must add up to one. Add the ones you have and su.pdf
The probabilities must add up to one. Add the ones you have and su.pdf
Ankitagarwaleleraipu
The most likely F1 will be the one that is made from 4 and 5. This is because see the map between c and d gene. In map 1 the distance is 15 and in map 2 the distance is 20. What we know is , the larger the distance between two genes there are more recombinants between those 2 genes. Here in map 1 the distance between c and d is 10 which means the 2 genes are more likely to be in a shorter dstance ie they are linked. Linked genes fail to separate during meiosis and results in lesser number of recombinants and more of parents. So here in 2x3 F1s we cannot say that the heterozygous will replace the homozygous recessive allele. But in map2 ie F1s of 4x5, the distance between c and d is 20, and there will be less linkage compared to F1s of 2x3 and hence there is a chance for deletion of homozygous recessive alleles in them. Solution The most likely F1 will be the one that is made from 4 and 5. This is because see the map between c and d gene. In map 1 the distance is 15 and in map 2 the distance is 20. What we know is , the larger the distance between two genes there are more recombinants between those 2 genes. Here in map 1 the distance between c and d is 10 which means the 2 genes are more likely to be in a shorter dstance ie they are linked. Linked genes fail to separate during meiosis and results in lesser number of recombinants and more of parents. So here in 2x3 F1s we cannot say that the heterozygous will replace the homozygous recessive allele. But in map2 ie F1s of 4x5, the distance between c and d is 20, and there will be less linkage compared to F1s of 2x3 and hence there is a chance for deletion of homozygous recessive alleles in them..
The most likely F1 will be the one that is made from 4 and 5. This i.pdf
The most likely F1 will be the one that is made from 4 and 5. This i.pdf
Ankitagarwaleleraipu
Subculturing or passage is the method of preserving or continuing the culture for longer periods Subculturing can be done in three procedures based on the cells we need to passage or subculture. 1. Bacterial subculture. 2.Monolayer sub culture. 3. Suspension sub culture. Requirements :- For any of the sub culture it needs the following criteria The adequate conditions like subculture should be done periodically, need of adding nutrients or shifting of the innoculum both are considered as subculture. 1. MONOLAYER CULTURES when the continous cell lines or other adhered cells which are grown on the roux flask or other surface which are cultured by removing by trypsinization procedures and grown in the fresh medium eg DMEM medium Dulbeco modified Eagles medium. So that the cells will grow vigorously and differentiate. 2. Suspension cultures when cells of the well grown medium is transferred to the fresh medium components so that cells grow in high nutrient concentration, 3. Bacterial sub culturing : Transfer of innoculum(colony) from solid agar surface to broth medium, solid surface to solid surface, liquid broth to liquid broth, liquid broth to solid agar medium surface, sub culturing can be done by streaking, pouring, spreading onto fresh medium components. Solution Subculturing or passage is the method of preserving or continuing the culture for longer periods Subculturing can be done in three procedures based on the cells we need to passage or subculture. 1. Bacterial subculture. 2.Monolayer sub culture. 3. Suspension sub culture. Requirements :- For any of the sub culture it needs the following criteria The adequate conditions like subculture should be done periodically, need of adding nutrients or shifting of the innoculum both are considered as subculture. 1. MONOLAYER CULTURES when the continous cell lines or other adhered cells which are grown on the roux flask or other surface which are cultured by removing by trypsinization procedures and grown in the fresh medium eg DMEM medium Dulbeco modified Eagles medium. So that the cells will grow vigorously and differentiate. 2. Suspension cultures when cells of the well grown medium is transferred to the fresh medium components so that cells grow in high nutrient concentration, 3. Bacterial sub culturing : Transfer of innoculum(colony) from solid agar surface to broth medium, solid surface to solid surface, liquid broth to liquid broth, liquid broth to solid agar medium surface, sub culturing can be done by streaking, pouring, spreading onto fresh medium components..
Subculturing or passage is the method of preserving or continuing th.pdf
Subculturing or passage is the method of preserving or continuing th.pdf
Ankitagarwaleleraipu
public class Interest{ double interest(double rate, double amount){ return amount+(amount*rate); } double totalSaving(int months,double monthly,double rate){ double yearly=rate/12; for(int i=1;i<=months;i++){ System.out.print(\"After Month \"+i+\" Amount \"); monthly=interest(yearly,monthly); System.out.println(monthly); } } public static void main(String [] args){ Interest i=new Interest(); i.totalSaving(12,100,0.5) } } Solution public class Interest{ double interest(double rate, double amount){ return amount+(amount*rate); } double totalSaving(int months,double monthly,double rate){ double yearly=rate/12; for(int i=1;i<=months;i++){ System.out.print(\"After Month \"+i+\" Amount \"); monthly=interest(yearly,monthly); System.out.println(monthly); } } public static void main(String [] args){ Interest i=new Interest(); i.totalSaving(12,100,0.5) } }.
public class Interest{double interest(double rate, double amount){.pdf
public class Interest{double interest(double rate, double amount){.pdf
Ankitagarwaleleraipu
Phototaxis the Phenomenon of movement of motile unicellular organisms such as algae and bacteria toward or away from light is termed as phototaxis movement. This is advantageous for phototrophic organisms as they can orient themselves most efficiently to receive light for photosynthesis. Phototaxis is called positive if the movement is in the direction of light and negative if the direction is opposite. Phototropism, Growth with respect to light, expressed in all shoots and some roots. Phototropism is one of the many plant tropisms or movements which respond to external stimuli Charles Darwin studied plant growth phenomena involving tropisms. He found the bending of plants toward light. This phenomenon, which is caused by differential growth, is called phototropism. In experiments he used seedlings of canary grass (Phalaris canariensis), the youngest leaves are sheathed in a protective organ called the coleoptile. Coleoptiles are very sensitive to light, especially to blue light . If illuminated on one side with a short pulse of dim blue light, they will bend (grow) toward the source of the light pulse within an hour. Simillarity between Phototaxis and phototropism Both are related with abiotic factor i.e light. ___________________. . Solution Phototaxis the Phenomenon of movement of motile unicellular organisms such as algae and bacteria toward or away from light is termed as phototaxis movement. This is advantageous for phototrophic organisms as they can orient themselves most efficiently to receive light for photosynthesis. Phototaxis is called positive if the movement is in the direction of light and negative if the direction is opposite. Phototropism, Growth with respect to light, expressed in all shoots and some roots. Phototropism is one of the many plant tropisms or movements which respond to external stimuli Charles Darwin studied plant growth phenomena involving tropisms. He found the bending of plants toward light. This phenomenon, which is caused by differential growth, is called phototropism. In experiments he used seedlings of canary grass (Phalaris canariensis), the youngest leaves are sheathed in a protective organ called the coleoptile. Coleoptiles are very sensitive to light, especially to blue light . If illuminated on one side with a short pulse of dim blue light, they will bend (grow) toward the source of the light pulse within an hour. Simillarity between Phototaxis and phototropism Both are related with abiotic factor i.e light. ___________________. ..
Phototaxisthe Phenomenon of movement of motile unicellular organis.pdf
Phototaxisthe Phenomenon of movement of motile unicellular organis.pdf
Ankitagarwaleleraipu
Miller indices: It is defined as by considering the plane in which it intersects the main crystallographic axes of the solid. A set of numbers which explains the intercepts and thus it may be used to identify the plane or the surface. Solution Miller indices: It is defined as by considering the plane in which it intersects the main crystallographic axes of the solid. A set of numbers which explains the intercepts and thus it may be used to identify the plane or the surface..
Miller indices It is defined as by considerin.pdf
Miller indices It is defined as by considerin.pdf
Ankitagarwaleleraipu
Marijuana is also called as cannabis and it is a preparation of cannabis plant and it is used as a psychoactive drug or medicine. Characteristics of Cannabis were studied to determine the suitable and efficient environmental conditions for its indoor mass cultivation for pharmaceutical studies. Effect of different photosynthetic photon flux densities,temperature and CO2 concentrations on gas and water vapour exchange characteristics of the Cannabis. The rate of photosynthesis and water use efficiency of Cannabis increases with photosynthetic photon flux densities at lower temperatures. Genrally the photosynthetic process will occur by taking the carbondioxide and water and in the presence of sunlight and chlorophyll it forms the glucose and oxygen and from the glucose the plant makes the cellulose which gives the fibrous structures to the plant. The osmosis process helps in the absorbption of water and minerals from soil. The osmotic pressure mainly helpful in intake and transport of minerals and the soil condition also plays an important role. Cannabis gives its potential for better survival,growth and productivity in drier and CO2 rich environment. Solution Marijuana is also called as cannabis and it is a preparation of cannabis plant and it is used as a psychoactive drug or medicine. Characteristics of Cannabis were studied to determine the suitable and efficient environmental conditions for its indoor mass cultivation for pharmaceutical studies. Effect of different photosynthetic photon flux densities,temperature and CO2 concentrations on gas and water vapour exchange characteristics of the Cannabis. The rate of photosynthesis and water use efficiency of Cannabis increases with photosynthetic photon flux densities at lower temperatures. Genrally the photosynthetic process will occur by taking the carbondioxide and water and in the presence of sunlight and chlorophyll it forms the glucose and oxygen and from the glucose the plant makes the cellulose which gives the fibrous structures to the plant. The osmosis process helps in the absorbption of water and minerals from soil. The osmotic pressure mainly helpful in intake and transport of minerals and the soil condition also plays an important role. Cannabis gives its potential for better survival,growth and productivity in drier and CO2 rich environment..
Marijuana is also called as cannabis and it is a preparation of cann.pdf
Marijuana is also called as cannabis and it is a preparation of cann.pdf
Ankitagarwaleleraipu
IHD = 1 Therefore there can be only 1 -bond or ring. The two signals composed of singlets means all the hydrogens are isolated from one another, but there are two types in the molecule giving differing chemical shifts. The structure must be symmetrical. Likely compound is 2,2- dimethylpropanal (three methyl groups contributing one signal, and one aldehyde hydrogen contributing another signal. All non-equivalent hydrogens are too far apart to split the signal, resulting in singlets) Solution IHD = 1 Therefore there can be only 1 -bond or ring. The two signals composed of singlets means all the hydrogens are isolated from one another, but there are two types in the molecule giving differing chemical shifts. The structure must be symmetrical. Likely compound is 2,2- dimethylpropanal (three methyl groups contributing one signal, and one aldehyde hydrogen contributing another signal. All non-equivalent hydrogens are too far apart to split the signal, resulting in singlets).
IHD = 1 Therefore there can be only 1 -bond or ring. The two signals.pdf
IHD = 1 Therefore there can be only 1 -bond or ring. The two signals.pdf
Ankitagarwaleleraipu
I have the answer ready in paint but i am not able to upload. 1) F(0)=(1,0), F(pi/4)=(0,1), F(pi/2) =(-1,0), F(3pi/4)=(0,-1) & F(pi/2)=(1,0) Hence the and moves in a circle of radius 1 unit. 2) F\'(t)= (-2sin2t, 2cos2t) F\'(pi/2) = (0, -2) This represents the Speed at t= pi/2 3) Integral 0 to 1 F(t) dt = Area of circle = pir^2 = pi (as r = 1) Solution I have the answer ready in paint but i am not able to upload. 1) F(0)=(1,0), F(pi/4)=(0,1), F(pi/2) =(-1,0), F(3pi/4)=(0,-1) & F(pi/2)=(1,0) Hence the and moves in a circle of radius 1 unit. 2) F\'(t)= (-2sin2t, 2cos2t) F\'(pi/2) = (0, -2) This represents the Speed at t= pi/2 3) Integral 0 to 1 F(t) dt = Area of circle = pir^2 = pi (as r = 1).
I have the answer ready in paint but i am not able to upload. 1) F.pdf
I have the answer ready in paint but i am not able to upload. 1) F.pdf
Ankitagarwaleleraipu
home design insert animations development Solution home design insert animations development.
homedesigninsertanimationsdevelopmentSolutionhomedes.pdf
homedesigninsertanimationsdevelopmentSolutionhomedes.pdf
Ankitagarwaleleraipu
e Solution e.
eSolutione.pdf
eSolutione.pdf
Ankitagarwaleleraipu
C is correct. DHCP is a statefull method of configuring IPv6 addresses. It maintains the address states of each device. A, B, and D are incorrect. Each is a stateless method with no device maintaining the address states. Solution C is correct. DHCP is a statefull method of configuring IPv6 addresses. It maintains the address states of each device. A, B, and D are incorrect. Each is a stateless method with no device maintaining the address states..
C is correct. DHCP is a statefull method of configuring IPv6 address.pdf
C is correct. DHCP is a statefull method of configuring IPv6 address.pdf
Ankitagarwaleleraipu
B) The energy required to remove an electron from an atom Solution B) The energy required to remove an electron from an atom.
B) The energy required to remove an electron from an atomSolutio.pdf
B) The energy required to remove an electron from an atomSolutio.pdf
Ankitagarwaleleraipu
Answer: The following molecules would not require carrier transporters: a) carbon dioxide c) progesterone The following molecules would require carrier transporters: b) fructose d) arganine e) adenosine diphosphate Polar molecules and large ions dissolved in water cannot diffuse freely across the plasma membrane due to the hydrophobic nature of the fatty acid tails of the phospholipids that make up the lipid bilayer. Only small, non-polar molecules, such as oxygen and carbon dioxide, can diffuse easily across the membrane. Hence, no nonpolar molecules are transported by proteins in the form of transmembrane channels. These channels are gated, meaning that they open and close, and thus deregulate the flow of ions or small polar molecules across membranes, sometimes against the osmotic gradient. Larger molecules are transported by transmembrane carrier proteins, such as permeases, that change their conformation as the molecules are carried across (e.g. glucose or amino acids). Non-polar molecules, such as retinol or lipids, are poorly soluble in water. They are transported through aqueous compartments of cells or through extracellular space by water-soluble carriers (e.g. retinol binding protein). ADP/ATP translocases, also known as adenine nucleotide translocases (ANT) and ADP/ATP carrier proteins (AAC), are transporter proteins that enable the exchange of cytosolic adenosine diphosphate(ADP) and mitochondrial adenosine triphosphate (ATP) across the inner mitochondrial membrane. Solution Answer: The following molecules would not require carrier transporters: a) carbon dioxide c) progesterone The following molecules would require carrier transporters: b) fructose d) arganine e) adenosine diphosphate Polar molecules and large ions dissolved in water cannot diffuse freely across the plasma membrane due to the hydrophobic nature of the fatty acid tails of the phospholipids that make up the lipid bilayer. Only small, non-polar molecules, such as oxygen and carbon dioxide, can diffuse easily across the membrane. Hence, no nonpolar molecules are transported by proteins in the form of transmembrane channels. These channels are gated, meaning that they open and close, and thus deregulate the flow of ions or small polar molecules across membranes, sometimes against the osmotic gradient. Larger molecules are transported by transmembrane carrier proteins, such as permeases, that change their conformation as the molecules are carried across (e.g. glucose or amino acids). Non-polar molecules, such as retinol or lipids, are poorly soluble in water. They are transported through aqueous compartments of cells or through extracellular space by water-soluble carriers (e.g. retinol binding protein). ADP/ATP translocases, also known as adenine nucleotide translocases (ANT) and ADP/ATP carrier proteins (AAC), are transporter proteins that enable the exchange of cytosolic adenosine diphosphate(ADP) and mitochondrial adenosine triphosphate (ATP) across the inner mitoc.
AnswerThe following molecules would not require carrier transport.pdf
AnswerThe following molecules would not require carrier transport.pdf
Ankitagarwaleleraipu
Answer: Cyanide is an irreversible enzyme inhibitor of Cytochrome C Oxidase (Complex IV) the fourth complex in the electron transport chain. Cyanide ions bind to the iron atom of the Complex IV in the mitochondrial membrane, which results in blockade of electrons transfer to the final electron acceptor oxygen. This blockade causes build up of proton motive force in the intermembrane space as the protons are not allowed to flow back into the matrix which subsequently halts ATP production. Solution Answer: Cyanide is an irreversible enzyme inhibitor of Cytochrome C Oxidase (Complex IV) the fourth complex in the electron transport chain. Cyanide ions bind to the iron atom of the Complex IV in the mitochondrial membrane, which results in blockade of electrons transfer to the final electron acceptor oxygen. This blockade causes build up of proton motive force in the intermembrane space as the protons are not allowed to flow back into the matrix which subsequently halts ATP production..
AnswerCyanide is an irreversible enzyme inhibitor of Cytochrome C.pdf
AnswerCyanide is an irreversible enzyme inhibitor of Cytochrome C.pdf
Ankitagarwaleleraipu
a. There are two variables in labor market model. One is wage rate and the other is labor quantity. The ‘X’ axis represents labor quantity and the ‘Y’ axis represents wage rate. Solution a. There are two variables in labor market model. One is wage rate and the other is labor quantity. The ‘X’ axis represents labor quantity and the ‘Y’ axis represents wage rate..
a.There are two variables in labor market model. One is wage rate .pdf
a.There are two variables in labor market model. One is wage rate .pdf
Ankitagarwaleleraipu
A respiratory therapy professional diagnoses and treats those suffering from chronic and other respiratory problems. Some of their patients with respiratory problems would be: • Premature infants • Asthma patients • Patients with lung infections • Heart patients A respiratory therapist (RT) has a variety of job responsibilities. These include talking to patients, gathering information regarding their medical condition, diagnosing breathing conditions and associated treatments, informing the family about the respiratory therapy treatments, etc. Respiratory therapist must update their professional respiratory knowledge periodically and need to be well versed with the latest available techniques, treatments and diseases in respiratory therapy. Care Respiratory therapists often work in medical facilities such as hospitals and nursing homes. They administer oxygen, perform CPR, use ventilators, and give medicines as needed. The ability to provide this care and build relationships with patients is an advantage for people who want to work in the medical field without becoming a medical doctor. Therapists who work in extended care facilities like nursing homes have an even longer time to develop relationships with their patients. Misconception among nurses about a respiration therapist: STRESS: Nurses do think that, being a respiration therapist could be strenuous and stressful, as they spend the majority of the day on their feet. The care that respiratory therapists provide deals with one of the most basic and important life activities -- breathing. Helping people through breathing struggles is stressful under normal conditions. For those therapists who work in hospitals, the stress is more constant. Administering CPR and assisting with treatment in emergency rooms is high pressure. Another factor that can add to the stress is working with children who have breathing issues, or who have been in a drowning accident or other type of accident that has compromised their respiration. WORK CONDITION and ENVIRONMENT: Nurses do believe that, RTs may have to work on weekends, holidays, and various shifts and may also have to work extended hours in case of emergency. A career in respiratory therapy also means being exposed to infections and micro-organisms. Another misconception is that, as being a registered nurse, they do have more opportunities of different places to work like hospitals, clinics, doctor\'s offices, jail\'s, factories, home health, and of course as a school nurse. whereas, as RTs, well not so many as they could work on just hospitals and home health. These are the major misconceptions among nurses about a respiratory therapist. Solution A respiratory therapy professional diagnoses and treats those suffering from chronic and other respiratory problems. Some of their patients with respiratory problems would be: • Premature infants • Asthma patients • Patients with lung infections • Heart patients A respiratory therapist (RT) has a variety of .
A respiratory therapy professional diagnoses and treats those suffer.pdf
A respiratory therapy professional diagnoses and treats those suffer.pdf
Ankitagarwaleleraipu
a) Angular gyrus is present in parietal cortex. It is concerned with storage of memories of the visual symbols. b) Broca\'s aphasia occurs due to damage of left inferior frontal region of cerebral cortex. Broca’s area: It is area 44. Area 44 is the motor speech area. It is also called speech center. It is situated in the lower part of prefrontal cortex. Broca’s aphasia: c) Wernicke\'s area is situated in upper part of temporal lobe. It plays an important role in speech. Lesions in this area results in Wernicke\'s aphasia. d) Damage to left temporal lobe leads to Wernicke\'s aphasia. Therefore, option b is correct. Broca’s aphasia is usually associated with the lesions of left inferior frontal region of cerebral cortex. Solution a) Angular gyrus is present in parietal cortex. It is concerned with storage of memories of the visual symbols. b) Broca\'s aphasia occurs due to damage of left inferior frontal region of cerebral cortex. Broca’s area: It is area 44. Area 44 is the motor speech area. It is also called speech center. It is situated in the lower part of prefrontal cortex. Broca’s aphasia: c) Wernicke\'s area is situated in upper part of temporal lobe. It plays an important role in speech. Lesions in this area results in Wernicke\'s aphasia. d) Damage to left temporal lobe leads to Wernicke\'s aphasia. Therefore, option b is correct. Broca’s aphasia is usually associated with the lesions of left inferior frontal region of cerebral cortex..
a) Angular gyrus is present in parietal cortex. It is concerned with.pdf
a) Angular gyrus is present in parietal cortex. It is concerned with.pdf
Ankitagarwaleleraipu
Since you\'re diluting the solution to 2.5 times its initial volume, since VM = constant, the final concentration is the initial concentration over 2.5, or .0250/2.5 = .010 M. Solution Since you\'re diluting the solution to 2.5 times its initial volume, since VM = constant, the final concentration is the initial concentration over 2.5, or .0250/2.5 = .010 M..
Since youre diluting the solution to 2.5 times .pdf
Since youre diluting the solution to 2.5 times .pdf
Ankitagarwaleleraipu
wo (-2) above the O3 means there are 2 extra electrons available for bonding. Polyatomic ions are groups of atoms joined together by covalent bonds, like molecules, except that they have a charge. The only difference between the process for drawing Lewis diagrams for molecules and for ions is in determining the number of available electrons. Count the valence as before then add an electron for each unit of negative charge or subtract one for each unit of positive charge. For example, the sulfite ion has the formula SO32-. The number of valence electrons is 6 + 3*6 + 2 = 26. The atom with the highest electronegativity in the sulfite ion is the sulfur, so it belongs in the center of the diagram with oxygen atoms bonded to it. Fill in enough bonds to hold the ion together then add non-bonding electrons until all atoms obey the octet rule or you have used all that are available. Solution wo (-2) above the O3 means there are 2 extra electrons available for bonding. Polyatomic ions are groups of atoms joined together by covalent bonds, like molecules, except that they have a charge. The only difference between the process for drawing Lewis diagrams for molecules and for ions is in determining the number of available electrons. Count the valence as before then add an electron for each unit of negative charge or subtract one for each unit of positive charge. For example, the sulfite ion has the formula SO32-. The number of valence electrons is 6 + 3*6 + 2 = 26. The atom with the highest electronegativity in the sulfite ion is the sulfur, so it belongs in the center of the diagram with oxygen atoms bonded to it. Fill in enough bonds to hold the ion together then add non-bonding electrons until all atoms obey the octet rule or you have used all that are available..
wo (-2) above the O3 means there are 2 extra elec.pdf
wo (-2) above the O3 means there are 2 extra elec.pdf
Ankitagarwaleleraipu
國中會考國文
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國中會考國文國中會考國文國中會考國文國中會考國文國中會考國文國中會考國文國中會考國文
中 央社
𝐃𝐚𝐭𝐚 𝐏𝐫𝐨𝐭𝐞𝐜𝐭𝐢𝐨𝐧 𝐎𝐟𝐟𝐢𝐜𝐞𝐫 (𝐃𝐏𝐎) 𝐎𝐧𝐥𝐢𝐧𝐞 𝐓𝐫𝐚𝐢𝐧𝐢𝐧𝐠"
𝐃𝐚𝐭𝐚 𝐏𝐫𝐨𝐭𝐞𝐜𝐭𝐢𝐨𝐧 𝐎𝐟𝐟𝐢𝐜𝐞𝐫 (𝐃𝐏𝐎) 𝐎𝐧𝐥𝐢𝐧𝐞 𝐓𝐫𝐚𝐢𝐧𝐢𝐧𝐠"
𝐃𝐚𝐭𝐚 𝐏𝐫𝐨𝐭𝐞𝐜𝐭𝐢𝐨𝐧 𝐎𝐟𝐟𝐢𝐜𝐞𝐫 (𝐃𝐏𝐎) 𝐎𝐧𝐥𝐢𝐧𝐞 𝐓𝐫𝐚𝐢𝐧𝐢𝐧𝐠"
Infosec train
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The probabilities must add up to one. Add the ones you have and subtract their sum from one to get the missing probability. P(4) = 1- .74 = 0.26 Solution The probabilities must add up to one. Add the ones you have and subtract their sum from one to get the missing probability. P(4) = 1- .74 = 0.26.
The probabilities must add up to one. Add the ones you have and su.pdf
The probabilities must add up to one. Add the ones you have and su.pdf
Ankitagarwaleleraipu
The most likely F1 will be the one that is made from 4 and 5. This is because see the map between c and d gene. In map 1 the distance is 15 and in map 2 the distance is 20. What we know is , the larger the distance between two genes there are more recombinants between those 2 genes. Here in map 1 the distance between c and d is 10 which means the 2 genes are more likely to be in a shorter dstance ie they are linked. Linked genes fail to separate during meiosis and results in lesser number of recombinants and more of parents. So here in 2x3 F1s we cannot say that the heterozygous will replace the homozygous recessive allele. But in map2 ie F1s of 4x5, the distance between c and d is 20, and there will be less linkage compared to F1s of 2x3 and hence there is a chance for deletion of homozygous recessive alleles in them. Solution The most likely F1 will be the one that is made from 4 and 5. This is because see the map between c and d gene. In map 1 the distance is 15 and in map 2 the distance is 20. What we know is , the larger the distance between two genes there are more recombinants between those 2 genes. Here in map 1 the distance between c and d is 10 which means the 2 genes are more likely to be in a shorter dstance ie they are linked. Linked genes fail to separate during meiosis and results in lesser number of recombinants and more of parents. So here in 2x3 F1s we cannot say that the heterozygous will replace the homozygous recessive allele. But in map2 ie F1s of 4x5, the distance between c and d is 20, and there will be less linkage compared to F1s of 2x3 and hence there is a chance for deletion of homozygous recessive alleles in them..
The most likely F1 will be the one that is made from 4 and 5. This i.pdf
The most likely F1 will be the one that is made from 4 and 5. This i.pdf
Ankitagarwaleleraipu
Subculturing or passage is the method of preserving or continuing the culture for longer periods Subculturing can be done in three procedures based on the cells we need to passage or subculture. 1. Bacterial subculture. 2.Monolayer sub culture. 3. Suspension sub culture. Requirements :- For any of the sub culture it needs the following criteria The adequate conditions like subculture should be done periodically, need of adding nutrients or shifting of the innoculum both are considered as subculture. 1. MONOLAYER CULTURES when the continous cell lines or other adhered cells which are grown on the roux flask or other surface which are cultured by removing by trypsinization procedures and grown in the fresh medium eg DMEM medium Dulbeco modified Eagles medium. So that the cells will grow vigorously and differentiate. 2. Suspension cultures when cells of the well grown medium is transferred to the fresh medium components so that cells grow in high nutrient concentration, 3. Bacterial sub culturing : Transfer of innoculum(colony) from solid agar surface to broth medium, solid surface to solid surface, liquid broth to liquid broth, liquid broth to solid agar medium surface, sub culturing can be done by streaking, pouring, spreading onto fresh medium components. Solution Subculturing or passage is the method of preserving or continuing the culture for longer periods Subculturing can be done in three procedures based on the cells we need to passage or subculture. 1. Bacterial subculture. 2.Monolayer sub culture. 3. Suspension sub culture. Requirements :- For any of the sub culture it needs the following criteria The adequate conditions like subculture should be done periodically, need of adding nutrients or shifting of the innoculum both are considered as subculture. 1. MONOLAYER CULTURES when the continous cell lines or other adhered cells which are grown on the roux flask or other surface which are cultured by removing by trypsinization procedures and grown in the fresh medium eg DMEM medium Dulbeco modified Eagles medium. So that the cells will grow vigorously and differentiate. 2. Suspension cultures when cells of the well grown medium is transferred to the fresh medium components so that cells grow in high nutrient concentration, 3. Bacterial sub culturing : Transfer of innoculum(colony) from solid agar surface to broth medium, solid surface to solid surface, liquid broth to liquid broth, liquid broth to solid agar medium surface, sub culturing can be done by streaking, pouring, spreading onto fresh medium components..
Subculturing or passage is the method of preserving or continuing th.pdf
Subculturing or passage is the method of preserving or continuing th.pdf
Ankitagarwaleleraipu
public class Interest{ double interest(double rate, double amount){ return amount+(amount*rate); } double totalSaving(int months,double monthly,double rate){ double yearly=rate/12; for(int i=1;i<=months;i++){ System.out.print(\"After Month \"+i+\" Amount \"); monthly=interest(yearly,monthly); System.out.println(monthly); } } public static void main(String [] args){ Interest i=new Interest(); i.totalSaving(12,100,0.5) } } Solution public class Interest{ double interest(double rate, double amount){ return amount+(amount*rate); } double totalSaving(int months,double monthly,double rate){ double yearly=rate/12; for(int i=1;i<=months;i++){ System.out.print(\"After Month \"+i+\" Amount \"); monthly=interest(yearly,monthly); System.out.println(monthly); } } public static void main(String [] args){ Interest i=new Interest(); i.totalSaving(12,100,0.5) } }.
public class Interest{double interest(double rate, double amount){.pdf
public class Interest{double interest(double rate, double amount){.pdf
Ankitagarwaleleraipu
Phototaxis the Phenomenon of movement of motile unicellular organisms such as algae and bacteria toward or away from light is termed as phototaxis movement. This is advantageous for phototrophic organisms as they can orient themselves most efficiently to receive light for photosynthesis. Phototaxis is called positive if the movement is in the direction of light and negative if the direction is opposite. Phototropism, Growth with respect to light, expressed in all shoots and some roots. Phototropism is one of the many plant tropisms or movements which respond to external stimuli Charles Darwin studied plant growth phenomena involving tropisms. He found the bending of plants toward light. This phenomenon, which is caused by differential growth, is called phototropism. In experiments he used seedlings of canary grass (Phalaris canariensis), the youngest leaves are sheathed in a protective organ called the coleoptile. Coleoptiles are very sensitive to light, especially to blue light . If illuminated on one side with a short pulse of dim blue light, they will bend (grow) toward the source of the light pulse within an hour. Simillarity between Phototaxis and phototropism Both are related with abiotic factor i.e light. ___________________. . Solution Phototaxis the Phenomenon of movement of motile unicellular organisms such as algae and bacteria toward or away from light is termed as phototaxis movement. This is advantageous for phototrophic organisms as they can orient themselves most efficiently to receive light for photosynthesis. Phototaxis is called positive if the movement is in the direction of light and negative if the direction is opposite. Phototropism, Growth with respect to light, expressed in all shoots and some roots. Phototropism is one of the many plant tropisms or movements which respond to external stimuli Charles Darwin studied plant growth phenomena involving tropisms. He found the bending of plants toward light. This phenomenon, which is caused by differential growth, is called phototropism. In experiments he used seedlings of canary grass (Phalaris canariensis), the youngest leaves are sheathed in a protective organ called the coleoptile. Coleoptiles are very sensitive to light, especially to blue light . If illuminated on one side with a short pulse of dim blue light, they will bend (grow) toward the source of the light pulse within an hour. Simillarity between Phototaxis and phototropism Both are related with abiotic factor i.e light. ___________________. ..
Phototaxisthe Phenomenon of movement of motile unicellular organis.pdf
Phototaxisthe Phenomenon of movement of motile unicellular organis.pdf
Ankitagarwaleleraipu
Miller indices: It is defined as by considering the plane in which it intersects the main crystallographic axes of the solid. A set of numbers which explains the intercepts and thus it may be used to identify the plane or the surface. Solution Miller indices: It is defined as by considering the plane in which it intersects the main crystallographic axes of the solid. A set of numbers which explains the intercepts and thus it may be used to identify the plane or the surface..
Miller indices It is defined as by considerin.pdf
Miller indices It is defined as by considerin.pdf
Ankitagarwaleleraipu
Marijuana is also called as cannabis and it is a preparation of cannabis plant and it is used as a psychoactive drug or medicine. Characteristics of Cannabis were studied to determine the suitable and efficient environmental conditions for its indoor mass cultivation for pharmaceutical studies. Effect of different photosynthetic photon flux densities,temperature and CO2 concentrations on gas and water vapour exchange characteristics of the Cannabis. The rate of photosynthesis and water use efficiency of Cannabis increases with photosynthetic photon flux densities at lower temperatures. Genrally the photosynthetic process will occur by taking the carbondioxide and water and in the presence of sunlight and chlorophyll it forms the glucose and oxygen and from the glucose the plant makes the cellulose which gives the fibrous structures to the plant. The osmosis process helps in the absorbption of water and minerals from soil. The osmotic pressure mainly helpful in intake and transport of minerals and the soil condition also plays an important role. Cannabis gives its potential for better survival,growth and productivity in drier and CO2 rich environment. Solution Marijuana is also called as cannabis and it is a preparation of cannabis plant and it is used as a psychoactive drug or medicine. Characteristics of Cannabis were studied to determine the suitable and efficient environmental conditions for its indoor mass cultivation for pharmaceutical studies. Effect of different photosynthetic photon flux densities,temperature and CO2 concentrations on gas and water vapour exchange characteristics of the Cannabis. The rate of photosynthesis and water use efficiency of Cannabis increases with photosynthetic photon flux densities at lower temperatures. Genrally the photosynthetic process will occur by taking the carbondioxide and water and in the presence of sunlight and chlorophyll it forms the glucose and oxygen and from the glucose the plant makes the cellulose which gives the fibrous structures to the plant. The osmosis process helps in the absorbption of water and minerals from soil. The osmotic pressure mainly helpful in intake and transport of minerals and the soil condition also plays an important role. Cannabis gives its potential for better survival,growth and productivity in drier and CO2 rich environment..
Marijuana is also called as cannabis and it is a preparation of cann.pdf
Marijuana is also called as cannabis and it is a preparation of cann.pdf
Ankitagarwaleleraipu
IHD = 1 Therefore there can be only 1 -bond or ring. The two signals composed of singlets means all the hydrogens are isolated from one another, but there are two types in the molecule giving differing chemical shifts. The structure must be symmetrical. Likely compound is 2,2- dimethylpropanal (three methyl groups contributing one signal, and one aldehyde hydrogen contributing another signal. All non-equivalent hydrogens are too far apart to split the signal, resulting in singlets) Solution IHD = 1 Therefore there can be only 1 -bond or ring. The two signals composed of singlets means all the hydrogens are isolated from one another, but there are two types in the molecule giving differing chemical shifts. The structure must be symmetrical. Likely compound is 2,2- dimethylpropanal (three methyl groups contributing one signal, and one aldehyde hydrogen contributing another signal. All non-equivalent hydrogens are too far apart to split the signal, resulting in singlets).
IHD = 1 Therefore there can be only 1 -bond or ring. The two signals.pdf
IHD = 1 Therefore there can be only 1 -bond or ring. The two signals.pdf
Ankitagarwaleleraipu
I have the answer ready in paint but i am not able to upload. 1) F(0)=(1,0), F(pi/4)=(0,1), F(pi/2) =(-1,0), F(3pi/4)=(0,-1) & F(pi/2)=(1,0) Hence the and moves in a circle of radius 1 unit. 2) F\'(t)= (-2sin2t, 2cos2t) F\'(pi/2) = (0, -2) This represents the Speed at t= pi/2 3) Integral 0 to 1 F(t) dt = Area of circle = pir^2 = pi (as r = 1) Solution I have the answer ready in paint but i am not able to upload. 1) F(0)=(1,0), F(pi/4)=(0,1), F(pi/2) =(-1,0), F(3pi/4)=(0,-1) & F(pi/2)=(1,0) Hence the and moves in a circle of radius 1 unit. 2) F\'(t)= (-2sin2t, 2cos2t) F\'(pi/2) = (0, -2) This represents the Speed at t= pi/2 3) Integral 0 to 1 F(t) dt = Area of circle = pir^2 = pi (as r = 1).
I have the answer ready in paint but i am not able to upload. 1) F.pdf
I have the answer ready in paint but i am not able to upload. 1) F.pdf
Ankitagarwaleleraipu
home design insert animations development Solution home design insert animations development.
homedesigninsertanimationsdevelopmentSolutionhomedes.pdf
homedesigninsertanimationsdevelopmentSolutionhomedes.pdf
Ankitagarwaleleraipu
e Solution e.
eSolutione.pdf
eSolutione.pdf
Ankitagarwaleleraipu
C is correct. DHCP is a statefull method of configuring IPv6 addresses. It maintains the address states of each device. A, B, and D are incorrect. Each is a stateless method with no device maintaining the address states. Solution C is correct. DHCP is a statefull method of configuring IPv6 addresses. It maintains the address states of each device. A, B, and D are incorrect. Each is a stateless method with no device maintaining the address states..
C is correct. DHCP is a statefull method of configuring IPv6 address.pdf
C is correct. DHCP is a statefull method of configuring IPv6 address.pdf
Ankitagarwaleleraipu
B) The energy required to remove an electron from an atom Solution B) The energy required to remove an electron from an atom.
B) The energy required to remove an electron from an atomSolutio.pdf
B) The energy required to remove an electron from an atomSolutio.pdf
Ankitagarwaleleraipu
Answer: The following molecules would not require carrier transporters: a) carbon dioxide c) progesterone The following molecules would require carrier transporters: b) fructose d) arganine e) adenosine diphosphate Polar molecules and large ions dissolved in water cannot diffuse freely across the plasma membrane due to the hydrophobic nature of the fatty acid tails of the phospholipids that make up the lipid bilayer. Only small, non-polar molecules, such as oxygen and carbon dioxide, can diffuse easily across the membrane. Hence, no nonpolar molecules are transported by proteins in the form of transmembrane channels. These channels are gated, meaning that they open and close, and thus deregulate the flow of ions or small polar molecules across membranes, sometimes against the osmotic gradient. Larger molecules are transported by transmembrane carrier proteins, such as permeases, that change their conformation as the molecules are carried across (e.g. glucose or amino acids). Non-polar molecules, such as retinol or lipids, are poorly soluble in water. They are transported through aqueous compartments of cells or through extracellular space by water-soluble carriers (e.g. retinol binding protein). ADP/ATP translocases, also known as adenine nucleotide translocases (ANT) and ADP/ATP carrier proteins (AAC), are transporter proteins that enable the exchange of cytosolic adenosine diphosphate(ADP) and mitochondrial adenosine triphosphate (ATP) across the inner mitochondrial membrane. Solution Answer: The following molecules would not require carrier transporters: a) carbon dioxide c) progesterone The following molecules would require carrier transporters: b) fructose d) arganine e) adenosine diphosphate Polar molecules and large ions dissolved in water cannot diffuse freely across the plasma membrane due to the hydrophobic nature of the fatty acid tails of the phospholipids that make up the lipid bilayer. Only small, non-polar molecules, such as oxygen and carbon dioxide, can diffuse easily across the membrane. Hence, no nonpolar molecules are transported by proteins in the form of transmembrane channels. These channels are gated, meaning that they open and close, and thus deregulate the flow of ions or small polar molecules across membranes, sometimes against the osmotic gradient. Larger molecules are transported by transmembrane carrier proteins, such as permeases, that change their conformation as the molecules are carried across (e.g. glucose or amino acids). Non-polar molecules, such as retinol or lipids, are poorly soluble in water. They are transported through aqueous compartments of cells or through extracellular space by water-soluble carriers (e.g. retinol binding protein). ADP/ATP translocases, also known as adenine nucleotide translocases (ANT) and ADP/ATP carrier proteins (AAC), are transporter proteins that enable the exchange of cytosolic adenosine diphosphate(ADP) and mitochondrial adenosine triphosphate (ATP) across the inner mitoc.
AnswerThe following molecules would not require carrier transport.pdf
AnswerThe following molecules would not require carrier transport.pdf
Ankitagarwaleleraipu
Answer: Cyanide is an irreversible enzyme inhibitor of Cytochrome C Oxidase (Complex IV) the fourth complex in the electron transport chain. Cyanide ions bind to the iron atom of the Complex IV in the mitochondrial membrane, which results in blockade of electrons transfer to the final electron acceptor oxygen. This blockade causes build up of proton motive force in the intermembrane space as the protons are not allowed to flow back into the matrix which subsequently halts ATP production. Solution Answer: Cyanide is an irreversible enzyme inhibitor of Cytochrome C Oxidase (Complex IV) the fourth complex in the electron transport chain. Cyanide ions bind to the iron atom of the Complex IV in the mitochondrial membrane, which results in blockade of electrons transfer to the final electron acceptor oxygen. This blockade causes build up of proton motive force in the intermembrane space as the protons are not allowed to flow back into the matrix which subsequently halts ATP production..
AnswerCyanide is an irreversible enzyme inhibitor of Cytochrome C.pdf
AnswerCyanide is an irreversible enzyme inhibitor of Cytochrome C.pdf
Ankitagarwaleleraipu
a. There are two variables in labor market model. One is wage rate and the other is labor quantity. The ‘X’ axis represents labor quantity and the ‘Y’ axis represents wage rate. Solution a. There are two variables in labor market model. One is wage rate and the other is labor quantity. The ‘X’ axis represents labor quantity and the ‘Y’ axis represents wage rate..
a.There are two variables in labor market model. One is wage rate .pdf
a.There are two variables in labor market model. One is wage rate .pdf
Ankitagarwaleleraipu
A respiratory therapy professional diagnoses and treats those suffering from chronic and other respiratory problems. Some of their patients with respiratory problems would be: • Premature infants • Asthma patients • Patients with lung infections • Heart patients A respiratory therapist (RT) has a variety of job responsibilities. These include talking to patients, gathering information regarding their medical condition, diagnosing breathing conditions and associated treatments, informing the family about the respiratory therapy treatments, etc. Respiratory therapist must update their professional respiratory knowledge periodically and need to be well versed with the latest available techniques, treatments and diseases in respiratory therapy. Care Respiratory therapists often work in medical facilities such as hospitals and nursing homes. They administer oxygen, perform CPR, use ventilators, and give medicines as needed. The ability to provide this care and build relationships with patients is an advantage for people who want to work in the medical field without becoming a medical doctor. Therapists who work in extended care facilities like nursing homes have an even longer time to develop relationships with their patients. Misconception among nurses about a respiration therapist: STRESS: Nurses do think that, being a respiration therapist could be strenuous and stressful, as they spend the majority of the day on their feet. The care that respiratory therapists provide deals with one of the most basic and important life activities -- breathing. Helping people through breathing struggles is stressful under normal conditions. For those therapists who work in hospitals, the stress is more constant. Administering CPR and assisting with treatment in emergency rooms is high pressure. Another factor that can add to the stress is working with children who have breathing issues, or who have been in a drowning accident or other type of accident that has compromised their respiration. WORK CONDITION and ENVIRONMENT: Nurses do believe that, RTs may have to work on weekends, holidays, and various shifts and may also have to work extended hours in case of emergency. A career in respiratory therapy also means being exposed to infections and micro-organisms. Another misconception is that, as being a registered nurse, they do have more opportunities of different places to work like hospitals, clinics, doctor\'s offices, jail\'s, factories, home health, and of course as a school nurse. whereas, as RTs, well not so many as they could work on just hospitals and home health. These are the major misconceptions among nurses about a respiratory therapist. Solution A respiratory therapy professional diagnoses and treats those suffering from chronic and other respiratory problems. Some of their patients with respiratory problems would be: • Premature infants • Asthma patients • Patients with lung infections • Heart patients A respiratory therapist (RT) has a variety of .
A respiratory therapy professional diagnoses and treats those suffer.pdf
A respiratory therapy professional diagnoses and treats those suffer.pdf
Ankitagarwaleleraipu
a) Angular gyrus is present in parietal cortex. It is concerned with storage of memories of the visual symbols. b) Broca\'s aphasia occurs due to damage of left inferior frontal region of cerebral cortex. Broca’s area: It is area 44. Area 44 is the motor speech area. It is also called speech center. It is situated in the lower part of prefrontal cortex. Broca’s aphasia: c) Wernicke\'s area is situated in upper part of temporal lobe. It plays an important role in speech. Lesions in this area results in Wernicke\'s aphasia. d) Damage to left temporal lobe leads to Wernicke\'s aphasia. Therefore, option b is correct. Broca’s aphasia is usually associated with the lesions of left inferior frontal region of cerebral cortex. Solution a) Angular gyrus is present in parietal cortex. It is concerned with storage of memories of the visual symbols. b) Broca\'s aphasia occurs due to damage of left inferior frontal region of cerebral cortex. Broca’s area: It is area 44. Area 44 is the motor speech area. It is also called speech center. It is situated in the lower part of prefrontal cortex. Broca’s aphasia: c) Wernicke\'s area is situated in upper part of temporal lobe. It plays an important role in speech. Lesions in this area results in Wernicke\'s aphasia. d) Damage to left temporal lobe leads to Wernicke\'s aphasia. Therefore, option b is correct. Broca’s aphasia is usually associated with the lesions of left inferior frontal region of cerebral cortex..
a) Angular gyrus is present in parietal cortex. It is concerned with.pdf
a) Angular gyrus is present in parietal cortex. It is concerned with.pdf
Ankitagarwaleleraipu
Since you\'re diluting the solution to 2.5 times its initial volume, since VM = constant, the final concentration is the initial concentration over 2.5, or .0250/2.5 = .010 M. Solution Since you\'re diluting the solution to 2.5 times its initial volume, since VM = constant, the final concentration is the initial concentration over 2.5, or .0250/2.5 = .010 M..
Since youre diluting the solution to 2.5 times .pdf
Since youre diluting the solution to 2.5 times .pdf
Ankitagarwaleleraipu
wo (-2) above the O3 means there are 2 extra electrons available for bonding. Polyatomic ions are groups of atoms joined together by covalent bonds, like molecules, except that they have a charge. The only difference between the process for drawing Lewis diagrams for molecules and for ions is in determining the number of available electrons. Count the valence as before then add an electron for each unit of negative charge or subtract one for each unit of positive charge. For example, the sulfite ion has the formula SO32-. The number of valence electrons is 6 + 3*6 + 2 = 26. The atom with the highest electronegativity in the sulfite ion is the sulfur, so it belongs in the center of the diagram with oxygen atoms bonded to it. Fill in enough bonds to hold the ion together then add non-bonding electrons until all atoms obey the octet rule or you have used all that are available. Solution wo (-2) above the O3 means there are 2 extra electrons available for bonding. Polyatomic ions are groups of atoms joined together by covalent bonds, like molecules, except that they have a charge. The only difference between the process for drawing Lewis diagrams for molecules and for ions is in determining the number of available electrons. Count the valence as before then add an electron for each unit of negative charge or subtract one for each unit of positive charge. For example, the sulfite ion has the formula SO32-. The number of valence electrons is 6 + 3*6 + 2 = 26. The atom with the highest electronegativity in the sulfite ion is the sulfur, so it belongs in the center of the diagram with oxygen atoms bonded to it. Fill in enough bonds to hold the ion together then add non-bonding electrons until all atoms obey the octet rule or you have used all that are available..
wo (-2) above the O3 means there are 2 extra elec.pdf
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假营业执照价钱 【制作+微:892719599】
假营业执照价钱 【制作+微:892719599】
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𝐃𝐚𝐭𝐚 𝐏𝐫𝐨𝐭𝐞𝐜𝐭𝐢𝐨𝐧 𝐎𝐟𝐟𝐢𝐜𝐞𝐫 (𝐃𝐏𝐎) 𝐎𝐧𝐥𝐢𝐧𝐞 𝐓𝐫𝐚𝐢𝐧𝐢𝐧𝐠"
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成绩修改,黑客入侵,黑客修改成绩,大学成绩能改吗改GPA,大学改分数哇塞,听说有人改大学毕业成绩了?😲 黑客大大太牛了吧!这就是传说中的学霸操作吗?佩服佩...
成绩修改,黑客入侵,黑客修改成绩,大学成绩能改吗改GPA,大学改分数哇塞,听说有人改大学毕业成绩了?😲 黑客大大太牛了吧!这就是传说中的学霸操作吗?佩服佩...
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【微 tytyqqww 信】网上找黑客改蒙纳士大学__Monash University修改成绩黑客修改成绩,黑客改高考成绩,黑客修改中考成绩1.🎉你是否...
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真的可以找黑客修改塔斯马尼亚大学 University of Tasmania改成绩黑客竟然可以找到漏洞来修改大学成绩,这真的让我感到非常惊讶和佩服。【...
真的可以找黑客修改塔斯马尼亚大学 University of Tasmania改成绩黑客竟然可以找到漏洞来修改大学成绩,这真的让我感到非常惊讶和佩服。【...
黑客挂科改成绩科廷大学__Curtin University1.🎉GPA低了,怎么办?别担心!黑客改成绩轻松搞定~ 😎国外大学也能用哦!再也不怕被开除啦!...
黑客挂科改成绩科廷大学__Curtin University1.🎉GPA低了,怎么办?别担心!黑客改成绩轻松搞定~ 😎国外大学也能用哦!再也不怕被开除啦!...
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黑客改分,黑客改gpa,黑客改成绩,修改国外大学成绩黑客改GPA【微 tytyqqww 信】澳大利亚天主教大学__Australian Catholic ...
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假营业执照价钱 【制作+微:892719599】
假营业执照价钱 【制作+微:892719599】
7.212 So.pdf
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7.212 Solution 7.212
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