Q.Find dxdy in the following: y=tan−1(1−3x23x−x3),−31<x<31
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🔒 Start your 14-day free trial to unlock the full solution →Concept understanding — Inverse Tangent Identity
Inverse Tangent Identities
The inverse tangent function obeys a family of addition and doubling identities that let you combine two arctangents into one. They come straight from the tangent addition formula, but they carry conditions you must respect.
The core addition identity
Start from tan(A+B)=1−tanAtanBtanA+tanB. Put A=tan−1x and B=tan−1y, so tanA=x and tanB=y. Then
tan−1x+tan−1y=tan−1(1−xyx+y),xy<1.
The restriction xy<1 keeps the combined angle inside the principal range (−π/2,π/2).
If xy>1 the raw formula lands in the wrong branch, so you must correct it:
tan−1x+tan−1y=π+tan−1(1−xyx+y) (x,y>0),
and −π+tan−1(⋅) when x,y<0. Ignoring this is the classic exam slip.
Subtraction
Replacing y with −y gives
tan−1x−tan−1y=tan−1(1+xyx−y),xy>−1.
The doubling identity
Set y=x in the addition formula:
2tan−1x=tan−1(1−x22x),−1<x<1.
The same angle can also be rewritten through sine and cosine, which is handy in integration and in proofs -- but each alternate form only matches 2tan−1x on part of its domain, so the two forms carry different conditions:
2tan−1x=sin−1(1+x22x),−1≤x≤1,
2tan−1x=cos−1(1+x21−x2),x≥0.
The cos−1 form needs x≥0 -- it fails for negative x. Check x=−1: 2tan−1(−1)=2(−4π)=−2π, but cos−1(1+11−1)=cos−1(0)=2π, the wrong sign entirely. The sin−1 form has no such restriction because sin−1 (unlike cos−1) can return a negative angle.
The complementary identity
For every real x,
tan−1x+cot−1x=2π.
This holds without restriction because tan−1 and cot−1 of the same value are complementary angles. …
Concept: Inverse Tangent Identity — the expression matches the tangent triple-angle formula, letting the inverse tangent be simplified before differentiating.
Step 1: Let x=tanθ. Since tan3θ=1−3tan2θ3tanθ−tan3θ,
1−3x23x−x3=tan3θ,y=tan−1(tan3θ). …
Substituting x=tanθ and using the tangent triple-angle identity simplifies y to 3tan−1x within the given domain; differentiating gives dxdy=1+x23.
Recognising the Identity
A cubic numerator over a quadratic denominator, with these specific coefficients (3x−x3 over 1−3x2), is the signature of the tangent triple-angle formula:
tan3θ=1−3tan2θ3tanθ−tan3θ.
Setting x=tanθ turns the given expression into tan3θ, but tan−1(tan3θ) only equals 3θ when 3θ lies in the principal range of tan−1 — the given domain on x is exactly what guarantees this.
Step-by-Step Solution
1. Substitute x=tanθ.
Let θ=tan−1x, so θ∈(−2π,2π). Then:
1−3x23x−x3=1−3tan2θ3tanθ−tan3θ=tan3θ⇒y=tan−1(tan3θ).
2. Use the given domain to pin down the range of 3θ.
We are told −31<x<31. Since tan6π=31 and tan is increasing on (−2π,2π):
−6π<θ<6π⇒−2π<3θ<2π.
3. Simplify using the principal range of tan−1.
Since 3θ already lies inside (−2π,2π), the principal range of tan−1, no adjustment by π is needed: …
Method: Recognising the Triple-Angle Pattern in an Inverse-Tangent Expression
Some inverse-tangent expressions hide the triple-angle tangent identity rather than the double-angle one — the giveaway is a cubic numerator paired with a quadratic denominator with alternating signs.
Steps
Step 1: Compare the expression's shape against the triple-angle formula
tan3θ=1−3tan2θ3tanθ−tan3θ.
A numerator of the form 3(⋅)−(⋅)3 over a denominator 1−3(⋅)2 is this identity, not the double-angle one (1−x22x).
Step 2: Substitute x=tanθ
This turns the fraction into tan3θ exactly, so the expression becomes y=tan−1(tan3θ).
Step 3: Translate the given x-domain into a θ-domain, then a 3θ-domain
Since tanθ is strictly increasing on (−2π,2π), an inequality on x=tanθ converts directly to the same inequality on θ; multiplying through by 3 gives the range of 3θ.
Step 4: Check 3θ against tan−1's principal range before cancelling …
Common Mistakes
Mistake 1: Confusing the triple-angle pattern with the double-angle one
Because both patterns involve x=tanθ, it's easy to misapply the double-angle formula 1−x22x to an expression that's actually the triple-angle form 1−3x23x−x3. Why it's wrong: using the wrong identity gives an entirely different (and incorrect) angle. Correct approach: check the powers carefully — a cubic numerator over a quadratic denominator with a factor of 3 signals the triple-angle identity, tan3θ, not the double-angle one.
Mistake 2: Skipping the range check because the answer "looks clean" …
Showing the 12 most recent of 39 on this concept.
- CBSE 2020Set 65/2/11 markMCQQ.tan−13+tan−1λ=tan−1(1−3λ3+λ) is valid for what values of λ? (A) λ∈(−31, 31) (B) λ>31 (C) λ<31 (D) All real values of λ
›Reveal solutionSolution
The inverse tangent addition formula tan−1x+tan−1y=tan−11−xyx+y holds only when xy<1. Here x=3, y=λ, so the condition is 3λ<1, i.e. λ<31. The correct option is (C).
The formula you’ve written —
tan−13+tan−1λ=tan−1(1−3λ3+λ)
— is the standard inverse tangent addition identity, but it comes with a hidden condition. Many students apply it blindly, and that’s where mistakes happen.
Let’s understand why the condition exists.
The core idea: the range of tan−1 and the product condition
Recall that tan−1x (also written arctanx) gives an angle in (−2π,2π). So the sum of two such angles, tan−13+tan−1λ, lies in (−π,π).
The formula
tan−1x+tan−1y=tan−11−xyx+y
is derived from the tangent addition formula:
tan(A+B)=1−tanAtanBtanA+tanB
If we set A=tan−1x, B=tan−1y, then tan(A+B)=1−xyx+y.
But here’s the catch: tan−11−xyx+y always gives an angle in (−2π,2π). So the equality holds only when A+B itself lies in (−2π,2π).
When does A+B stay inside that interval? It turns out the cleanest condition is xy<1.
tan−1x+tan−1y=tan−11−xyx+yif and only ifxy<1
If xy=1, the denominator is zero — the formula breaks. If xy>1, then A+B falls outside (−2π,2π), and the right-hand side would give a different principal value (you’d need to add or subtract π).
Applying it to this problem
Here x=3 and y=λ. So the condition for the formula to be valid is:
-
Write the product condition:
xy<1⇒3λ<1
-
Solve for λ:
λ<31
That’s it. No further restrictions — λ can be any real number less than 31. …
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- CBSE 2026Set A1 markMCQQ.tan−1(−31)=(a) 3π(b) 6π(c) −3π(d) −6π
›Reveal solutionSolution
tan−1(−31)=−6π.
The principal value of tan−1 lies in (−2π,2π).
We need the angle θ in this range with tanθ=−31.
…
- CBSE 2026Set A1 markMCQQ.2tan−131=(a) tan−123(b) tan−143(c) tan−134(d) tan−132
›Reveal solutionSolution
2tan−131=tan−143.
Use the double-angle identity valid for ∣x∣<1:
2tan−1x=tan−11−x22x.
Here x=31: …
- CBSE 2026Set A1 markMCQQ.x∈R, cot(tan−1x+cot−1x)=(a) 1(b) 21(c) 0(d) 31
›Reveal solutionSolution
cot(tan−1x+cot−1x)=cot2π=0.
For all real x, the complementary identity gives
tan−1x+cot−1x=2π.
Therefore …
- CBSE 2026Set A1 markMCQQ.tan−12+tan−13=(a) −4π(b) 4π(c) 43π(d) π
›Reveal solutionSolution
tan−12+tan−13=43π.
Use the addition formula. With a=2, b=3 we have ab=6>1, so
tan−1a+tan−1b=π+tan−11−aba+b.
Compute:
1−aba+b=1−65=−55=−1.
So …
- CBSE 2026Set A1 markMCQQ.tan−1yx−tan−1x+yx−y=(a) −43π(b) 2π(c) 4π(d) 3π
›Reveal solutionSolution
tan−1yx−tan−1x+yx−y=4π.
Use tan−1a−tan−1b=tan−11+aba−b with a=yx, b=x+yx−y.
Numerator:
a−b=yx−x+yx−y=y(x+y)x(x+y)−y(x−y)=y(x+y)x2+xy−xy+y2=y(x+y)x2+y2.
Denominator: …
- CBSE 2026Set A1 markMCQQ.∣x∣≤1, cos−1(1+x21−x2)=(a) 2cos−1x(b) 2sin−1x(c) 2tan−1x(d) tan−12x
›Reveal solutionSolution
cos−11+x21−x2=2tan−1x (for 0≤x≤1).
Put x=tanθ, so θ=tan−1x. Then
1+x21−x2=1+tan2θ1−tan2θ=cos2θ.
Therefore …
- CBSE 2025Set E1 markMCQQ.cot−1(tan7π)=(a) 7π(b) 145π(c) 149π(d) 143π
›Reveal solutionSolution
Convert the tangent to a cotangent using complementary angles; the answer is 145π.
Use tanθ=cot(2π−θ):
tan7π=cot(2π−7π)=cot147π−2π=cot145π.
…
- CBSE 2025Set E1 markMCQQ.tan−1(−3)=(a) 6π(b) 3π(c) 32π(d) −3π
›Reveal solutionSolution
tan−1 is an odd function with principal range (−2π,2π); the value is −3π.
Since tan3π=3 and tan−1(−x)=−tan−1x, …
- CBSE 2025Set E1 markMCQQ.tan−1(3)−cot−1(−3)=(a) 0(b) −2π(c) π(d) 2π
›Reveal solutionSolution
Evaluate each inverse function in its principal range and subtract; result −2π.
First, tan−1(3)=3π.
For cot−1(−3), the principal range of cot−1 is (0,π). We need cotθ=−3 with θ∈(0,π). Since cot6π=3,
cot−1(−3)=π−6π=65π.
…
- CBSE 2025Set E1 markMCQQ.tan−121+tan−131=(a) π(b) 4π(c) 2π(d) 3π
›Reveal solutionSolution
Use the sum formula for inverse tangents; the sum is 4π.
When xy<1, tan−1x+tan−1y=tan−11−xyx+y. Here xy=61<1, so …
- CBSE 2025Set E1 markMCQQ.tan{21(tan−1x+tan−1x1)}=(a) 1(b) 3(c) 0(d) ∞
›Reveal solutionSolution
tan−1x+tan−1x1=2π; half is 4π; tan4π=1.
For x>0 there is a standard identity:
tan−1x+tan−1x1=2π.
Taking half: …
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