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RUDIKE [14]
2 years ago
9

The nurse reviewed laboratory values for a client with type 1 diabetes mellitus. The client's hemoglobin a1c (hba1c) is 9 percen

t. What is the priority action for the nurse?
Medicine
2 answers:
sashaice [31]2 years ago
5 0

The client's hemoglobin a1c (hba1c) is 9%. the priority action for the nurse is the transfusion of red blood cells, which should be considered because the patient has severe and/or symptomatic anemia.

<h3>What does hemoglobin 9 mean?</h3>

With hemoglobin between 6 and 9 g/dL, there is tachycardia, dyspnea and fatigue at the slightest exertion. With hemoglobin below 6 g/dL, symptoms are present even in sedentary activities, and when below 3.5 g/dL, heart failure is imminent and all activity is impossible.

With this information, we can conclude that a client has type 1 diabetes mellitus. The client's hemoglobin a1c (hba1c) is 9%. the priority action for the nurse is the transfusion of red blood cells, which should be considered because the patient has severe and/or symptomatic anemia.

Learn more about anemia in brainly.com/question/13031278

aleksley [76]2 years ago
3 0

Hemoglobin is required for transport of oxygen in body. As the client's hemoglobin a1c is 9%, the nurse should go for blood transfusion, as the patient has severe anemia.

<h3>What is the normal range of hemoglobin?</h3>

Hemoglobin is iron-containing substance that binds to oxygen and helps in its transport.

The normal levels of hemoglobin are:

  • For women, it is 12-16g/dL.
  • For men, it is 14-17.4g/dL.
  • For children, it is 9.5-24.5g/dL.

Any changes in these reference values are considered a defect. If the hemoglobin level decreases, it leads to anemia.

Anemia is characterized by fainting, weakness, slow breathing, etc.

Thus, as in the given case, the client should be given a blood transfusion by the nurse because it can be a case of severe anemia.

For more details regarding hemoglobin, visit:

brainly.com/question/15011428

#SPJ3

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Give an example of a 2 x 2 matrix game with exactly three nash equilibria in pure strategies. Explain.
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Answer:

A Nash equilibrium is a profile of strategies (s1,s2) such that the strategies are best responses to each other, i.e., no player can do strictly better by deviating. This helps us to find the (pure strategy) Nash equilibria.

To start, we find the best response for player 1 for each of the strategies player 2 can play. I will demonstrate this by underlining the best responses:

ABCA1–,10,101–,−10B10–––,01,11,10C−10,110–––,11,1

Player 1 is the row player, player 2 is the column player. If 2 plays column A, then player 1's best response is to play either row A or C, which gives him 1 rather than 0 as payoff. Similarly, the best response to column B is row A, and to column C it is row B.

Now we do the same for player 2 by underlining the best responses of the column player:

ABCA1–,1–0,10–––1–,−10B10–––,01,11,10–––C−10,1–10–––,11,1

So, if player 1 plays row A then player 2 best responds either with column A or column C, giving him 1 rather than 0. We also find the best responses for row B and C.

Now a pure strategy Nash equilibrium is a cell where both payoffs are underlined, i.e., where both strategies are best responses to each other. In the example, the unique pure strategy equilibrium is (A,A). (There may also be mixed strategy equilibria.) In all other cells, at least one player has an incentive to deviate (because it gives him a higher payoff).

EDIT: How to compute mixed strategy equilibria in discrete games?

In a mixed Nash strategy equilibrium, each of the players must be indifferent between any of the pure strategies played with positive probability. If this were not the case, then there is a profitable deviation (play the pure strategy with higher payoff with higher probability).

Consider player 2. He plays column A with probability p, B with probability q, and C with probability 1−p−q. We need to find p,q such that player 1 is indifferent between his pure strategies A,B,C. He is indifferent between row A (left hand side) and row B (right hand side) if p,q are such that

p+10q−10(1−q−p)=q+10(1−p−q).

He is indifferent between B and C if

q+10(1−p−q)=p+q+1−q−p=1.

You just have to solve the first condition for q as function of p, substitute q in the second condition and you have p. Inserting p again in the first gives you q.

Now we do the same with strategies for player 1 such that player 2 is indifferent. Player 1 plays A with probability x, B with probability y and C with probability 1−x−y. The two conditions that follow are

1x+10y−10(1−x−y)=x+10(1−x−y)x+10(1−x−y)=1

Solve this again to find x,y. This is a mixed-strategy equilibrium, because neither player has a profitable deviation. Remember, we constructed the profile (x,y;p,q) such that the other player is indifferent between his pure strategies. So, no matter how the other player unilaterally deviates, his expected payoff will be identical to that in equilibrium (x,y;p,q). In general, depending on the game and solutions x,y,p,q, there may be infinitely many mixed Nash equilibria, or none. The more pure strategies there are, the more tedious it is to compute mixed strategy equilibria, since we solve for N−1 variables for each player (N being the number of pure strategies of the other player).

Moreover, to find all equilibria, if there are more than 2 actions for a player, then every possible combination of actions has to be checked. Here, a player has 3 actions, and a mixed strategy equilibrium could entail mixing over all three or just any two of them. Since such a player would not have to be indifferent regarding the strategy played with probability 0, the equations you have to set up are different. In summary, manually checking for all possible mixed strategy equilibria if at least one player has more than two actions can require a lot of effort.

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