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Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear then randomly selects another pear, without replacement. Which tree diagram shows the correct probabilities for this situation?
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Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear then randomly selects another pear, without replacement. Which tree diagram shows the correct probabilities for this situation?

Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear-example-1
Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear-example-1
Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear-example-2
Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear-example-3
Ron has a bag containing 3 green pears and 4 red pears. He randomly selects a pear-example-4
User Xielingyun
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1 Answer

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The third tree diagram is correct.

The probabilities for the first draw are 3/7 for green and 4/7 for red.

If you draw a green pear first, then your probabilities for the second pear would be 2/6 for green and 4/6 for red (since it is done without replacement, the number of pears to choose from changes).

If you draw a red pear first, then your probabilities for the second pear would be 3/6 for green and 3/6 for red.
User Roger Dodger
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8.2k points
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