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\int x^{2}\left(x^{3}+3x^{2}+3x+1\right)\mathrm{d}x
\left(a+b\right)^{3}=a^{3}+3a^{2}b+3ab^{2}+b^{3} binom teoremasini \left(x+1\right)^{3} kengaytirilishi uchun ishlating.
\int x^{5}+3x^{4}+3x^{3}+x^{2}\mathrm{d}x
x^{2} ga x^{3}+3x^{2}+3x+1 ni ko'paytirish orqali distributiv xususiyatdan foydalanish.
\int x^{5}\mathrm{d}x+\int 3x^{4}\mathrm{d}x+\int 3x^{3}\mathrm{d}x+\int x^{2}\mathrm{d}x
Summani muddatma-muddat integratsiya qiling.
\int x^{5}\mathrm{d}x+3\int x^{4}\mathrm{d}x+3\int x^{3}\mathrm{d}x+\int x^{2}\mathrm{d}x
Har bir shartda konstantani qavsdan tashqariga oling.
\frac{x^{6}}{6}+3\int x^{4}\mathrm{d}x+3\int x^{3}\mathrm{d}x+\int x^{2}\mathrm{d}x
k\neq -1 uchun integral \int x^{k}\mathrm{d}x=\frac{x^{k+1}}{k+1} boʻlgani uchun, \int x^{5}\mathrm{d}x integralni \frac{x^{6}}{6} bilan almashtiring.
\frac{x^{6}}{6}+\frac{3x^{5}}{5}+3\int x^{3}\mathrm{d}x+\int x^{2}\mathrm{d}x
k\neq -1 uchun integral \int x^{k}\mathrm{d}x=\frac{x^{k+1}}{k+1} boʻlgani uchun, \int x^{4}\mathrm{d}x integralni \frac{x^{5}}{5} bilan almashtiring. 3 ni \frac{x^{5}}{5} marotabaga ko'paytirish.
\frac{x^{6}}{6}+\frac{3x^{5}}{5}+\frac{3x^{4}}{4}+\int x^{2}\mathrm{d}x
k\neq -1 uchun integral \int x^{k}\mathrm{d}x=\frac{x^{k+1}}{k+1} boʻlgani uchun, \int x^{3}\mathrm{d}x integralni \frac{x^{4}}{4} bilan almashtiring. 3 ni \frac{x^{4}}{4} marotabaga ko'paytirish.
\frac{x^{6}}{6}+\frac{3x^{5}}{5}+\frac{3x^{4}}{4}+\frac{x^{3}}{3}
k\neq -1 uchun integral \int x^{k}\mathrm{d}x=\frac{x^{k+1}}{k+1} boʻlgani uchun, \int x^{2}\mathrm{d}x integralni \frac{x^{3}}{3} bilan almashtiring.
\frac{x^{3}}{3}+\frac{3x^{4}}{4}+\frac{3x^{5}}{5}+\frac{x^{6}}{6}
Qisqartirish.
\frac{x^{3}}{3}+\frac{3x^{4}}{4}+\frac{3x^{5}}{5}+\frac{x^{6}}{6}+С
Агар F\left(x\right)f\left(x\right) ning dastlabki holati boʻlsa, u holatda f\left(x\right) ning barcha dastlabki holatlari toʻplami F\left(x\right)+C tarafidan belgilanadi. Shu sababli natijaga C\in \mathrm{R} integrallash konstantasini qoʻshing.