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Ch. 5 - Integration
Briggs - Calculus: Early Transcendentals 3rd Edition
Briggs3rd EditionCalculus: Early TranscendentalsISBN: 9780136847243당신이 사용하는 게 아니라요?교과서 변경
5장, 문제 5.3.13d

Area functions The graph of ƒ is shown in the figure. Let A(x) = ∫₋₂ˣ ƒ(t) dt and F(x) = ∫₄ˣ ƒ(t) dt be two area functions for ƒ. Evaluate the following area functions.
(d) F(4)
Graph of a function with labeled areas: 8, 9, and 17, illustrating integral calculations over specified intervals.

검증된 단계별 안내
1
Step 1: Understand the problem. We are tasked with evaluating F(4), where F(x) = ∫₄ˣ ƒ(t) dt. This represents the net area under the curve of ƒ(t) from t = 4 to t = x. Specifically, F(4) means evaluating the integral from t = 4 to t = 4.
Step 2: Recall a key property of definite integrals. When the upper and lower limits of integration are the same, the integral evaluates to 0. Mathematically, ∫ₐₐ ƒ(t) dt = 0 for any function ƒ(t).
Step 3: Apply this property to the given integral. Since F(4) = ∫₄⁴ ƒ(t) dt, the integral evaluates to 0 because the interval of integration has no width.
Step 4: Confirm the reasoning using the graph. The graph shows areas labeled for different intervals, but since the interval from t = 4 to t = 4 has no length, no area is enclosed.
Step 5: Conclude that F(4) = 0 based on the mathematical property of definite integrals and the interpretation of the graph.

비슷한 문제에 대한 검증된 영상 답변:

이 영상 해법은 위 문제에 도움이 된다고 튜터들이 추천한 것입니다.
영상 길이:
2m

주요 개념

질문에 올바르게 답하기 위해 반드시 이해해야 하는 핵심 개념들은 다음과 같습니다.

Definite Integral

A definite integral represents the signed area under a curve between two points on the x-axis. It is calculated using the Fundamental Theorem of Calculus, which connects differentiation and integration. In this context, the area functions A(x) and F(x) are defined as definite integrals, allowing us to evaluate the total area under the curve of the function f(t) from a specified lower limit to an upper limit.
추천 영상:
가이드 코스
05:43
Definition of the Definite Integral

Area Function

An area function, such as A(x) or F(x), is a function that gives the accumulated area under a curve from a specific starting point to a variable endpoint x. For example, A(x) = ∫₋₂ˣ f(t) dt calculates the area from -2 to x, while F(x) = ∫₄ˣ f(t) dt calculates the area from 4 to x. These functions help in understanding how the area changes as x varies.
추천 영상:
05:06
Finding Area When Bounds Are Not Given

Evaluating Area Functions

To evaluate an area function at a specific point, such as F(4), one must compute the definite integral from the lower limit to the specified upper limit. In this case, F(4) = ∫₄⁴ f(t) dt, which represents the area under the curve from 4 to 4. Since the limits are the same, the result is zero, indicating no area is accumulated over that interval.
추천 영상:
가이드 코스
4:26
Evaluating Composed Functions
관련 실천
교과서 질문

{Use of Tech} Approximating definite integrals Complete the following steps for the given integral and the given value of n. 

(d) Determine which Riemann sum (left or right) underestimates the value of the definite integral and which overestimates the value of the definite integral.


∫₃⁶ (1―2𝓍) d𝓍 ; n = 6

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교과서 질문

Matching functions with area functions Match the functions ƒ, whose graphs are given in a― d, with the area functions A (𝓍) = ∫₀ˣ ƒ(t) dt, whose graphs are given in A–D.



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교과서 질문

Explain why or why not Determine whether the following statements are true and give an explanation or counterexample.

(d) If ∫ₐᵇ ƒ(𝓍) d𝓍 = ∫ₐᵇ ƒ(𝓍) d𝓍, then ƒ is a constant function. 

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교과서 질문

Properties of integrals Suppose ∫₀³ƒ(𝓍) d𝓍 = 2 , ∫₃⁶ƒ(𝓍) d𝓍 = ―5 , and ∫₃⁶g(𝓍) d𝓍 = 1. Evaluate the following integrals.

(d) ∫₆³ (ƒ(𝓍) + 2g(𝓍)) d𝓍

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교과서 질문

{Use of Tech} Approximating definite integrals Complete the following steps for the given integral and the given value of n. 

(d) Determine which Riemann sum (left or right) underestimates the value of the definite integral and which overestimates the value of the definite integral..


∫₀² (𝓍²―2) d𝓍 ; n = 4

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교과서 질문

Sigma notation Evaluate the following expressions.

(d)     5                                                                                                                                                                              

       ∑ (1 + n²)                                                                                                                                                                          

       n=1                         

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