1 00:00:00,000 --> 00:00:08,660 CHRISTINE BREINER: Welcome to recitation. 2 00:00:08,660 --> 00:00:12,840 Today what I'd like us to do is look at the inequality tangent 3 00:00:12,840 --> 00:00:16,570 x bigger than x for the x-values between 0 and pi over 2. 4 00:00:16,570 --> 00:00:20,160 We want to show that that is definitely true 5 00:00:20,160 --> 00:00:21,747 using the mean value theorem. 6 00:00:21,747 --> 00:00:24,080 And I want to point out that this was actually something 7 00:00:24,080 --> 00:00:26,560 that Joel used when he was a graphing tangent x 8 00:00:26,560 --> 00:00:30,580 and arctangent x on the same xy-plane. 9 00:00:30,580 --> 00:00:35,220 He used this fact in order to get the right-looking graph. 10 00:00:35,220 --> 00:00:36,740 So what I'd like you to do, again, 11 00:00:36,740 --> 00:00:40,130 is I want you to show that for any x between 0 and pi over 2, 12 00:00:40,130 --> 00:00:41,880 tangent x is bigger than x. 13 00:00:41,880 --> 00:00:43,620 And use the mean value theorem to do it. 14 00:00:43,620 --> 00:00:45,980 I'll give you a little time to think about it, to work on it, 15 00:00:45,980 --> 00:00:47,938 and then I'll be back and we'll do it together. 16 00:00:56,080 --> 00:00:56,580 OK. 17 00:00:56,580 --> 00:00:57,790 Welcome back. 18 00:00:57,790 --> 00:01:00,400 So I'm going to take us through how to do this problem. 19 00:01:00,400 --> 00:01:02,760 And what I want to do is I want to point out 20 00:01:02,760 --> 00:01:03,810 a few things initially. 21 00:01:03,810 --> 00:01:05,310 So what I'm going to do is I'm going 22 00:01:05,310 --> 00:01:07,600 to remind us of the form of the mean value theorem 23 00:01:07,600 --> 00:01:08,590 that we need. 24 00:01:08,590 --> 00:01:12,490 And the form that we need will be 25 00:01:12,490 --> 00:01:20,610 f of x is equal to f of a plus f prime of c times x minus a. 26 00:01:20,610 --> 00:01:29,420 And here, remember, c has to be between a and x. 27 00:01:29,420 --> 00:01:35,700 So in this case, what we want to consider is the region from 0 28 00:01:35,700 --> 00:01:37,360 up to some x-value. 29 00:01:37,360 --> 00:01:40,680 So always, this is, if you think about it, the a and the x, 30 00:01:40,680 --> 00:01:44,810 well, a will be 0 and x will be the right-hand region, always 31 00:01:44,810 --> 00:01:46,280 less than pi over 2. 32 00:01:46,280 --> 00:01:47,980 So what we need to check is, I'm going 33 00:01:47,980 --> 00:01:52,730 to consider f of x equal tangent x. 34 00:01:52,730 --> 00:01:56,070 And what I need to consider is, does tangent x 35 00:01:56,070 --> 00:01:59,780 satisfy the hypotheses of the mean value theorem 36 00:01:59,780 --> 00:02:01,230 on the region of interest? 37 00:02:01,230 --> 00:02:05,430 And so our region of interest will always be a equals 0 38 00:02:05,430 --> 00:02:10,390 and b is equal to x, which is less than some pi over 2. 39 00:02:10,390 --> 00:02:13,990 And it is true, tangent x is continuous between 0 40 00:02:13,990 --> 00:02:15,860 and any value less than pi over 2. 41 00:02:15,860 --> 00:02:18,990 And it's also differentiable between 0 42 00:02:18,990 --> 00:02:20,910 and any value less than pi over 2. 43 00:02:20,910 --> 00:02:24,670 So I can apply the mean value theorem to tangent x. 44 00:02:24,670 --> 00:02:26,680 So in order to do this now, what I'd like to see 45 00:02:26,680 --> 00:02:31,430 is what kind of things I need for the right-hand side 46 00:02:31,430 --> 00:02:32,520 of this equation. 47 00:02:32,520 --> 00:02:34,530 So I obviously need to know what the output is 48 00:02:34,530 --> 00:02:36,795 at a, which is equal to 0. 49 00:02:36,795 --> 00:02:38,990 So let's recall f of 0. 50 00:02:38,990 --> 00:02:43,500 Well, tangent 0 is 0-- it's sine of 0 divided by cosine of 0. 51 00:02:43,500 --> 00:02:48,830 And then I need to evaluate the derivative somewhere between a, 52 00:02:48,830 --> 00:02:52,120 which is 0, and pi over 2. 53 00:02:52,120 --> 00:02:53,760 x can be any value less than pi over 2. 54 00:02:53,760 --> 00:02:57,940 So let's evaluate what the derivative is in terms of x. 55 00:02:57,940 --> 00:02:59,880 We did this, actually, in another recitation. 56 00:02:59,880 --> 00:03:04,890 The derivative of tangent x is secant squared x. 57 00:03:04,890 --> 00:03:08,020 And so now let's plug in what we know 58 00:03:08,020 --> 00:03:10,494 and then see what else we need to do in order 59 00:03:10,494 --> 00:03:11,785 to finish solving this problem. 60 00:03:16,230 --> 00:03:16,890 OK. 61 00:03:16,890 --> 00:03:18,710 So what we have. 62 00:03:18,710 --> 00:03:20,820 f of x, I'm actually going to write tangent x, 63 00:03:20,820 --> 00:03:23,380 so we can see what's happening here. 64 00:03:23,380 --> 00:03:27,910 f of x is tangent x, and then I have that that equals, 65 00:03:27,910 --> 00:03:34,650 well, f of a is 0, plus f prime evaluated at c-- 66 00:03:34,650 --> 00:03:42,090 so that's going to be secant squared c-- times x minus a. 67 00:03:42,090 --> 00:03:46,520 Well, a here is 0, so this is just times x. 68 00:03:46,520 --> 00:03:48,322 So we're very close. 69 00:03:48,322 --> 00:03:49,780 We're very close to showing tangent 70 00:03:49,780 --> 00:03:51,230 x is always bigger than x. 71 00:03:51,230 --> 00:03:54,640 In fact, you can see very easily what ultimately we 72 00:03:54,640 --> 00:03:55,440 need to show. 73 00:03:55,440 --> 00:03:59,590 We just need to show that secant squared c is bigger than 1 74 00:03:59,590 --> 00:04:00,720 in our region of interest. 75 00:04:00,720 --> 00:04:02,345 And that would do it, because then this 76 00:04:02,345 --> 00:04:04,810 would be bigger than 1 times x. 77 00:04:04,810 --> 00:04:05,670 The right-hand side 78 00:04:05,670 --> 00:04:08,170 would be bigger than 1 times x, so that would be sufficient. 79 00:04:08,170 --> 00:04:09,940 So let's make sure we understand what 80 00:04:09,940 --> 00:04:12,180 secant squared c can look like. 81 00:04:12,180 --> 00:04:14,530 Or what the values can be. 82 00:04:14,530 --> 00:04:20,685 So we have c is between 0 and x, which is less than pi over 2. 83 00:04:20,685 --> 00:04:22,430 Right? 84 00:04:22,430 --> 00:04:23,350 That's where c is. 85 00:04:23,350 --> 00:04:25,090 So we always need to remember what 86 00:04:25,090 --> 00:04:27,910 values c could possibly have. 87 00:04:27,910 --> 00:04:31,150 And then let's think about what we know about secant of c, 88 00:04:31,150 --> 00:04:31,650 there. 89 00:04:31,650 --> 00:04:39,400 Well, secant of c is equal to 1 over cosine of c. 90 00:04:39,400 --> 00:04:41,910 So if you can't remember what secant's values are, 91 00:04:41,910 --> 00:04:44,680 think about the values of cosine in that region. 92 00:04:44,680 --> 00:04:47,490 So I'm going to draw a rough sketch of the value of cosine 93 00:04:47,490 --> 00:04:49,050 between 0 and pi over 2. 94 00:04:52,179 --> 00:04:56,250 The value of cosine does something like this. 95 00:04:56,250 --> 00:04:59,040 This is 0, this is pi over 2. 96 00:04:59,040 --> 00:05:01,070 This is a very rough sketch. 97 00:05:01,070 --> 00:05:03,310 But this output is 1. 98 00:05:03,310 --> 00:05:06,650 So between 0 and pi over 2, cosine of c 99 00:05:06,650 --> 00:05:08,880 is always less than 1. 100 00:05:08,880 --> 00:05:12,515 So 1 over cosine of c is always bigger than 1. 101 00:05:12,515 --> 00:05:14,270 OK? 102 00:05:14,270 --> 00:05:16,120 Because we're taking that reciprocal value. 103 00:05:16,120 --> 00:05:21,010 So again, cosine of c from 0 to pi over 2, not including 0, 104 00:05:21,010 --> 00:05:22,920 is always strictly less than 1. 105 00:05:22,920 --> 00:05:26,440 And so 1 over cosine c is always strictly greater than 1. 106 00:05:26,440 --> 00:05:28,510 And so now I have the information 107 00:05:28,510 --> 00:05:30,987 I need to come back and finish the problem. 108 00:05:30,987 --> 00:05:32,820 So again, we were looking at the expression, 109 00:05:32,820 --> 00:05:37,930 we have tangent x is equal to secant squared c times x. 110 00:05:37,930 --> 00:05:40,690 Well, now I know secant c is bigger than 1, 111 00:05:40,690 --> 00:05:44,150 so now I know this whole thing is bigger than 1 times 112 00:05:44,150 --> 00:05:47,220 x, which is just equal to x. 113 00:05:47,220 --> 00:05:49,080 So if you noticed, on the left-hand side 114 00:05:49,080 --> 00:05:51,850 we have a tangent x equals something 115 00:05:51,850 --> 00:05:54,860 which is bigger than x. 116 00:05:54,860 --> 00:05:58,510 So we've just shown that, for any value of x between 0 117 00:05:58,510 --> 00:06:03,290 and pi over 2, tangent x is bigger than x. 118 00:06:03,290 --> 00:06:04,932 And I think we'll stop there.