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  • - [Voiceover] Let's see if we can find the limit

  • as x approaches negative 1

  • of x plus 1

  • over the square root of x plus 5 minus 2.

  • So, our first reaction might just be,

  • okay, well let's just use our limit properties

  • a little bit,

  • this is going to be the same thing as the limit

  • as x approaches negative 1 of x plus 1

  • over,

  • over the limit,

  • the limit

  • as x approaches negative 1

  • of square root of x plus 5 minus 2.

  • And then we could say, all right,

  • this thing up here,

  • x plus 1, if this is,

  • if we think about the graph y equals x plus 1,

  • it's continuous everywhere, especially at

  • x equals negative 1, and so to evaluate this limit,

  • we just have to evaluate this expression at

  • x equals negative 1,

  • so this numerator's just going to evaluate to negative 1

  • plus 1.

  • And then our denominator,

  • square root of x plus 5 minus 2 isn't continuous everywhere

  • but it is continuous at x equals negative 1

  • and so we can do the same thing.

  • We can just substitute negative 1 for x,

  • so this is going to be the square root of negative 1

  • plus 5 minus 2.

  • Now, what does this evaluate to?

  • Well, in the numerator we get a zero,

  • and in the denominator, negative 1 plus 5 is 4,

  • take the principle root is 2, minus 2,

  • we get zero again,

  • so we get,

  • we got zero

  • over zero.

  • Now, when you see that, you might be tempted to give up.

  • You say, oh, look, there's a zero in the denominator,

  • maybe this limit doesn't exist,

  • maybe I'm done here, what do I do?

  • And if this was non-zero up here in the numerator,

  • if you're taking a non-zero value and dividing it by zero,

  • that is undefined

  • and your limit would not exist.

  • But when you have zero over zero,

  • this is indeterminate form,

  • it doesn't mean necessarily that your limit does not exist,

  • and as we'll see in this video and many future ones,

  • there are tools at our disposal to address this,

  • and we will look at one of them.

  • Now, the tool that we're going to look at

  • is is there another way of rewriting this expression

  • so we can evaluate its limit

  • without getting the zero over zero?

  • Well, let's just rewrite,

  • let's just take this and give it,

  • so let's take this thing right over here,

  • and let's say this is g of x,

  • so essentially what we're trying to do is find the limit

  • of g of x

  • as x approaches negative 1,

  • so we can write g of x is equal to

  • x plus 1 and the only reason I'm defining it as g of x

  • is just to be able to think of it more clearly as a function

  • and manipulate the function

  • and then think about similar functions,

  • over x plus 5 minus 2,

  • or x plus 1 over the square root of x plus 5 minus 2.

  • Now, the technique we're going to use is when you get

  • this indeterminate form and if you have a square root

  • in either the numerator or the denominator,

  • it might help to get rid of that square root

  • and this is often called rationalizing the expression.

  • In this case, you have a square root in the denominator,

  • so it would be rationalizing

  • the denominator,

  • and so, this would be,

  • the way we would do it

  • is we would be leveraging our knowledge of difference

  • of squares.

  • We know,

  • we know that a plus b

  • times a minus b

  • is equal to a squared minus b squared,

  • you learned that in algebra

  • a little while ago,

  • or if we had the square root of a plus b

  • and we were to multiply that times the square root of a

  • minus b, well that would be the square root of a squared

  • which is just going to be a,

  • minus b squared,

  • so we can just leverage these ideas

  • to get rid of this radical down here.

  • The way we're going to do it

  • is we're going to multiply the numerator and the denominator

  • by the square root of x plus 5

  • plus 2, right?

  • We have the minus 2

  • so we multiply it times the plus 2,

  • so let's do that.

  • So we have

  • square root of x plus 5 plus 2

  • and we're going to multiply the numerator times

  • the same thing, 'cause we don't want to change the value

  • of the expression.

  • This is 1.

  • So, if we take the expression divided by the same expression

  • it's going to be 1,

  • so this is,

  • so square root of x plus 5 plus 2

  • and so this is going to be equal to,

  • this is going to be equal to x plus 1

  • times the square root,

  • times the square root of x plus 5

  • plus 2

  • and then the denominator is going to be,

  • well, it's going to be x,

  • the square root of x plus 5 squared

  • which would be just x plus 5

  • and then minus 2 squared,

  • minus 4,

  • and so this down here simplifies to x plus 5 minus 4

  • is just x plus 1

  • so this is just,

  • this is just x plus 1

  • and it probably jumps out at you that both the numerator

  • and the denominator have an x plus 1 in it,

  • so maybe we can simplify,

  • so we can simplify by just say,

  • well, g of x is equal to the square root of x plus 5

  • plus 2.

  • Now, some of you might be feeling a little off here,

  • and you would be correct.

  • Your spider senses would be,

  • is this,

  • is this definitely the same thing

  • as what we originally had before we cancelled out

  • the x plus 1s?

  • And the answer is the way I just wrote it

  • is not the exact same thing.

  • It is the exact same thing everywhere except at

  • x equals negative 1.

  • This thing right over here is defined

  • at x equals negative 1.

  • This thing right over here is not defined

  • at x equals negative 1,

  • and g of x was not,

  • was not,

  • so g of x right over here,

  • you don't get a good result when you try x equals negative 1

  • and so in order for this to truly be the same thing

  • as g of x,

  • the same function, we have to say

  • for x not equal to negative 1.

  • Now, this is a simplified version of g of x.

  • It is the same thing.

  • For any input x,

  • that g of x is defined, this is going to give you the same

  • output, and this is the exact same domain now,

  • now that we've put this constraint in,

  • as g of x.

  • Now you might say, okay, well how does this help us?

  • Because we want to find the limit as x approaches negative 1

  • and even here, I had to put this little constraint here

  • that x cannot be equal to negative 1.

  • How do we think about this limit?

  • Well, lucky for us,

  • we know,

  • lucky for us we know

  • that if we just take another function, f of x,

  • if we say f of x is equal to the square root of x plus 5

  • plus 2,

  • well then we know that f of x is equal to g of x

  • for all

  • x not equal to negative 1

  • because f of x does not have that constraint.

  • And we know if this is true of two,

  • if this is true of two functions,

  • then the limit as x approaches,

  • the limit, let me write this down,

  • since we know this,

  • because of this,

  • we know that the limit

  • of f of x

  • as x approaches negative 1 is going to be equal

  • to the limit of g of x

  • as x approaches negative 1,

  • and this of course is what we want to figure out,

  • what was the beginning of the problem,

  • but we can now use f of x here,

  • because only at x equals negative 1

  • that they are not the same,

  • and if you were to graph g of x

  • it just has a,

  • it has a point discontinuity,

  • or removable discont--

  • or, I should say, yeah,

  • a point discontinuity right over here

  • at x equals negative 1,

  • and so what is the limit?

  • And we are in the home stretch now.

  • What is the limit

  • of f of x?

  • Well, we could say the limit of the square root of x plus 5

  • plus 2

  • as x approaches negative 1,

  • well, this expression is continuous.

  • Or, this function is continuous at x equals negative 1

  • so we can just evaluate it at x equals negative 1,

  • so this is going to be the square root of negative 1

  • plus 5 plus 2,

  • so this is 4 square root,

  • principle root of 4 is 2,

  • 2 plus 2 is equal to 4.

  • So since the limit of f of x as x approaches negative 1

  • is 4, the limit of g of x

  • as x approaches negative 1 is also 4,

  • and if this little,

  • this little,

  • I guess you could say leap that I just made over here

  • doesn't make sense to you,

  • think about it,

  • think about it visually.

  • Think about it visually.

  • So if this is

  • my y-axis

  • and this is my x-axis,

  • g of x looked something like this.

  • G of x,

  • g of x, let me draw it,

  • g of x looked something,

  • something like

  • this,

  • and it had a gap at negative 1,

  • so it had a gap right over there,

  • while f of x,

  • f of x would have the same graph

  • except it wouldn't have,

  • it wouldn't have the gap,

  • and so if you're trying to find the limit,

  • it seems completely reasonable,

  • well let's just use f of x and evaluate what

  • f of x would be to kind of fill that gap

  • at x equals negative 1,

  • so hopefully this graphical version helps a little bit

  • or if it confuses you, ignore it.

- [Voiceover] Let's see if we can find the limit

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A2 初級

Limits by rationalizing | Limits and continuity | AP Calculus AB | Khan Academy

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    yukang920108 に公開 2022 年 07 月 04 日
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