Matematika/Kubinė lygtis

Duota kubinė lygtis:

${\displaystyle y^3+a{y}^2+by+c=0.}$

Pakeičiame ${\displaystyle y=x-\frac{a}{3},}$ gauname:

${\displaystyle {(x-\frac{a}{3})}^3+a{(x-\frac{a}{3})}^2+b(x-\frac{a}{3})+c=0,}$

${\displaystyle (x^3-3\cdot x^2\cdot \frac{a}{3}+3\cdot x\cdot {\left(\frac{a}{3}\right)}^2-{\left(\frac{a}{3}\right)}^3)+a(x^2-2\cdot x\cdot \frac{a}{3}+{\left(\frac{a}{3}\right)}^2)+b(x-\frac{a}{3})+c=0,}$

${\displaystyle (x^3-a{x}^2+3\cdot x\cdot \frac{a^2}{9}-\frac{a^3}{27})+a(x^2-\frac{2ax}{3}+\frac{a^2}{9})+bx-\frac{ab}{3}+c=0,}$

${\displaystyle (x^3-a{x}^2+\frac{a^{2}x}{3}-\frac{a^3}{27})+a{x}^2-\frac{2a^{2}x}{3}+\frac{a^3}{9}+bx-\frac{ab}{3}+c=0,}$

${\displaystyle x^3-\frac{a^3}{27}-\frac{a^{2}x}{3}+\frac{a^3}{9}+bx-\frac{ab}{3}+c=0,}$

${\displaystyle x^3-\frac{a^{2}x}{3}+bx+\frac{a^3}{9}-\frac{a^3}{27}-\frac{ab}{3}+c=0,}$

${\displaystyle x^3+(b-\frac{a^2}{3})x+\frac{3a^3}{27}-\frac{a^3}{27}-\frac{ab}{3}+c=0,}$

${\displaystyle x^3+(b-\frac{a^2}{3})x+\frac{2a^3}{27}-\frac{ab}{3}+c=0.}$

Pažymime ${\displaystyle p=b-\frac{a^2}{3},q=\frac{2a^3}{27}-\frac{ab}{3}+c}$ ir pakeitę gauname:

${\displaystyle x^3+px+q=0.}$

Toliau, tariame, kad lygties ${\displaystyle x^3+px+q=0}$ sprendinys ${\displaystyle x_0}$ yra koeficientas kvadratinės lygties, o kubinės lygties koeficientas p yra tos pačios pagalbinės kvadratinės lygties laisvasis narys (konstanta) padalintas iš 3. Ir tokiu budu sudarome naują pagalbinę kvadratinę funkciją ir lygtį:

${\displaystyle f(u)=u^2-x_{0}u-\frac{p}{3};}$

${\displaystyle u^2-x_{0}u-\frac{p}{3}=0.}$

Šios kvadatinės lygties šaknys (sprendiniai) yra ${\displaystyle u_1}$ ir ${\displaystyle u_2}$. Iš Vijeto teoremos žinome, kad ${\displaystyle u_1+u_2=-(-x_0)=x_0}$ ir ${\displaystyle u_1\cdot u_2=-\frac{p}{3};-3u_1{u}_2=p}$.

Į kubinę lygtį ${\displaystyle x^3+px+q=0}$ įstatome koeficientą p išreikštą per ${\displaystyle u_1}$ ir ${\displaystyle u_2}$ ir įstatome kubinės lygties sprendinį ${\displaystyle x_0}$ išreikštą per ${\displaystyle u_1}$ ir ${\displaystyle u_2}$. Tokiu budu mes rasime kam lygus q. Taigi:

${\displaystyle x_0^3+p{x}_0+q=0,}$

${\displaystyle (u_1+u_2{)}^3-3u_1{u}_2(u_1+u_2)+q=0,}$

${\displaystyle u_1^3+3u_1^2{u}_2+3u_1{u}_2^2+u_2^3-3u_1{u}_2(u_1+u_2)+q=0,}$

${\displaystyle u_1^3+3u_1^2{u}_2+3u_1{u}_2^2+u_2^3-3u_1^2{u}_2-3u_1{u}_2^2+q=0,}$

${\displaystyle u_1^3+u_2^3+q=0,}$

${\displaystyle u_1^3+u_2^3=-q.}$

Vadinasi, ${\displaystyle u_1^3=z_1}$ ir ${\displaystyle u_2^3=z_2}$ yra sprendiniai kitos kvadratinės lygties ${\displaystyle z^2+qz-\frac{p^3}{27}=0,}$ nes ${\displaystyle z_1\cdot z_2=u_1^3\cdot u_2^3={(-\frac{p}{3})}^3=-\frac{p^3}{27}}$ (ir taip pat iš Vijeto teoremos ${\displaystyle z_1+z_2=u_1^3+u_2^3=-q}$).

Išsprendžiame šią (antrą) kvadratinę lygtį:

${\displaystyle z^2+qz-\frac{p^3}{27}=0,}$

${\displaystyle {(z+\frac{q}{2})}^2-\frac{q^2}{4}-\frac{p^3}{27}=0,}$

${\displaystyle {(z+\frac{q}{2})}^2=\frac{q^2}{4}+\frac{p^3}{27},}$

${\displaystyle z+\frac{q}{2}=\pm \sqrt{\frac{q^2}{4}+\frac{p^3}{27}},}$

${\displaystyle z=-\frac{q}{2}\pm \sqrt{\frac{q^2}{4}+\frac{p^3}{27}}.}$

Vadinasi lygties ${\displaystyle z^2+qz-\frac{p^3}{27}=0}$ šaknys yra:

${\displaystyle z_1=-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}};}$

${\displaystyle z_2=-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}};}$

Na, o [pirmos] kvadratinės lygties ${\displaystyle u^2-x_{0}u-\frac{p}{3}=0}$ šaknys yra šios (nes ${\displaystyle z_1\cdot z_2=-\frac{p^3}{27},}$ o ${\displaystyle u_1^3\cdot u_2^3={(-\frac{p}{3})}^3}$ arba ${\displaystyle u_1\cdot u_2=-\frac{p}{3}}$):

${\displaystyle u_1=\sqrt[3]{z_1}=\sqrt[3]{-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}};}$

${\displaystyle u_2=\sqrt[3]{z_2}=\sqrt[3]{-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}.}$

Prisimindami, kad lygties ${\displaystyle x^3+px+q=0}$ šaknis yra ${\displaystyle x_0=u_1+u_2}$, gauname:

${\displaystyle x_0=x_1=u_1+u_2=\sqrt[3]{-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}+\sqrt[3]{-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}.}$

Kitos dvi kompleksinės šaknys, tenkina lygybę ${\displaystyle (u_1ϵ)\cdot (u_2{ϵ}^2)=-\frac{p}{3}}$ arba ${\displaystyle (u_1{ϵ}^2)\cdot (u_2ϵ)=-\frac{p}{3}.}$ Čia ${\displaystyle ϵ=-\frac{1}{2}+i\frac{\sqrt{3}}{2};{ϵ}^2=-\frac{1}{2}-i\frac{\sqrt{3}}{2};{ϵ}^3=1,}$

nes

${\displaystyle {ϵ}^2=(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\cdot (-\frac{1}{2}+i\frac{\sqrt{3}}{2})=\frac{1}{4}-i\frac{\sqrt{3}}{4}-i\frac{\sqrt{3}}{4}+i\cdot i\cdot \frac{3}{4}=\frac{1}{4}-i\frac{2\sqrt{3}}{4}-\frac{3}{4}=-\frac{2}{4}-i\frac{\sqrt{3}}{2}=-\frac{1}{2}-i\frac{\sqrt{3}}{2}.}$

${\displaystyle {ϵ}^3={ϵ}^2\cdot ϵ=(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\cdot (-\frac{1}{2}+i\frac{\sqrt{3}}{2})=\frac{1}{4}-i\frac{\sqrt{3}}{4}+i\frac{\sqrt{3}}{4}-i\cdot i\cdot \frac{3}{4}=\frac{1}{4}-(-1)\cdot \frac{3}{4}=\frac{1}{4}+\frac{3}{4}=1.}$

Vadinasi, kitos dvi lygties ${\displaystyle x^3+px+q=0}$ šaknys yra:

${\displaystyle x_2=u_1ϵ+u_2{ϵ}^2=u_1(-\frac{1}{2}+i\frac{\sqrt{3}}{2})+u_2(-\frac{1}{2}-i\frac{\sqrt{3}}{2})=-\frac{u_1+u_2}{2}+i\sqrt{3}\frac{u_1-u_2}{2};}$

${\displaystyle x_3=u_1{ϵ}^2+u_2ϵ=u_1(-\frac{1}{2}-i\frac{\sqrt{3}}{2})+u_2(-\frac{1}{2}+i\frac{\sqrt{3}}{2})=-\frac{u_1+u_2}{2}-i\sqrt{3}\frac{u_1-u_2}{2}.}$

Jei sprendžiant lygtį ${\displaystyle u^2-x_{0}u-\frac{p}{3}=0}$ (beieškant kubinės lygties sprendinių), ${\displaystyle u_1=u_2}$, tai turime, kad ${\displaystyle x_2=x_3=-\frac{1}{2}(u_1+u_2)=-\frac{1}{2}\sqrt[3]{-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}-\frac{1}{2}\sqrt[3]{-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}=-\frac{1}{2}(\sqrt[3]{-\frac{q}{2}}+\sqrt[3]{-\frac{q}{2}})=-\sqrt[3]{-\frac{q}{2}}=\sqrt[3]{\frac{q}{2}}.}$

Nes tada ${\displaystyle \sqrt{\frac{q^2}{4}+\frac{p^3}{27}}=0.}$

Iš sąlygos

${\displaystyle {\mathrm{\Delta }}_3=\frac{q^2}{4}+\frac{p^3}{27}=0(20)}$

išeina, kad

${\displaystyle (-\frac{q}{2}{)}^2=(-\frac{p}{3}{)}^3.(21)}$

Jei ${\displaystyle p\ne 0,}$ tai

${\displaystyle \sqrt[3]{-\frac{q}{2}}=\frac{-\frac{q}{2}}{\sqrt[3]{(-\frac{q}{2}{)}^2}}=\frac{-\frac{q}{2}}{\sqrt[3]{(-\frac{p}{3}{)}^3}}=\frac{-\frac{q}{2}}{-\frac{p}{3}}=\frac{3q}{2p}.(22)}$

Vadinasi, bent viena šaknies reikšmė racionaliai išsireiškia koeficientais p ir q. Parinkę ${\displaystyle u_1=u_2=\frac{3q}{2p},}$ turime

${\displaystyle u_1{u}_2=\frac{3q}{2p}\cdot \frac{3q}{2p}=\frac{9q^2}{4p^2}=\frac{9}{p^2}(-\frac{q}{2}{)}^2=\frac{9}{p^2}\cdot \frac{-p^3}{27}=-\frac{p}{3}.}$

Iš to turime, kad kai ${\displaystyle u_1=u_2}$, tai

${\displaystyle x_1=u_1+u_2=\sqrt[3]{-\frac{q}{2}}+\sqrt[3]{-\frac{q}{2}}=2\sqrt[3]{-\frac{q}{2}}=2\cdot \frac{3q}{2p}=\frac{3q}{p};(22.1)}$

${\displaystyle x_2=x_3=-\frac{1}{2}(u_1+u_2)=-\frac{1}{2}(\sqrt[3]{-\frac{q}{2}}+\sqrt[3]{-\frac{q}{2}})=-\left(\sqrt[3]{-\frac{q}{2}}\right)=-\frac{3q}{2p}.(22.2)}$

• Raskime lygties ${\displaystyle x^3-3x+2=0}$ sprendinius. Iš formulių turime:

${\displaystyle x_1=u_1+u_2=\sqrt[3]{-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}+\sqrt[3]{-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}=\sqrt[3]{-\frac{2}{2}+\sqrt{\frac{2^2}{4}+\frac{(-3{)}^3}{27}}}+\sqrt[3]{-\frac{2}{2}-\sqrt{\frac{2^2}{4}+\frac{(-3{)}^3}{27}}}=}$

${\displaystyle =\sqrt[3]{-1+\sqrt{\frac{4}{4}-\frac{27}{27}}}+\sqrt[3]{-1-\sqrt{\frac{4}{4}-\frac{27}{27}}}=\sqrt[3]{-1+\sqrt{0}}+\sqrt[3]{-1-\sqrt{0}}=\sqrt[3]{-1}+\sqrt[3]{-1}=-1-1=-2;}$

${\displaystyle x_2=u_1ϵ+u_2{ϵ}^2=u_1(-\frac{1}{2}+i\frac{\sqrt{3}}{2})+u_2(-\frac{1}{2}-i\frac{\sqrt{3}}{2})=}$

${\displaystyle =(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}+(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}=}$

${\displaystyle =(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{2}{2}+\sqrt{\frac{2^2}{4}+\frac{(-3{)}^3}{27}}}+(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{2}{2}-\sqrt{\frac{2^2}{4}+\frac{(-3{)}^3}{27}}}=(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\sqrt[3]{-1}+(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\sqrt[3]{-1}=}$

${\displaystyle =-(-\frac{1}{2}+i\frac{\sqrt{3}}{2})-(-\frac{1}{2}-i\frac{\sqrt{3}}{2})=\frac{1}{2}-i\frac{\sqrt{3}}{2}+\frac{1}{2}+i\frac{\sqrt{3}}{2}=\frac{1}{2}+\frac{1}{2}=1.}$

${\displaystyle x_3=u_1{ϵ}^2+u_2ϵ=u_1(-\frac{1}{2}-i\frac{\sqrt{3}}{2})+u_2(-\frac{1}{2}+i\frac{\sqrt{3}}{2})=}$

${\displaystyle =(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{q}{2}+\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}+(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{q}{2}-\sqrt{\frac{q^2}{4}+\frac{p^3}{27}}}=}$

${\displaystyle =(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{2}{2}+\sqrt{\frac{2^2}{4}+\frac{(-3{)}^3}{27}}}+(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\sqrt[3]{-\frac{2}{2}-\sqrt{\frac{2^2}{4}+\frac{(-3{)}^3}{27}}}=(-\frac{1}{2}-i\frac{\sqrt{3}}{2})\sqrt[3]{-1}+(-\frac{1}{2}+i\frac{\sqrt{3}}{2})\sqrt[3]{-1}=}$

${\displaystyle =-(-\frac{1}{2}-i\frac{\sqrt{3}}{2})-(-\frac{1}{2}+i\frac{\sqrt{3}}{2})=\frac{1}{2}+i\frac{\sqrt{3}}{2}+\frac{1}{2}-i\frac{\sqrt{3}}{2}=\frac{1}{2}+\frac{1}{2}=1.}$

Įstatę į lygtį ${\displaystyle x^3-3x+2=0}$ sprendinį ${\displaystyle x_1=-2}$, gauname:

${\displaystyle (-2{)}^3-3\cdot (-2)+2=-8+6+2=0.}$

Įstatę į lygtį ${\displaystyle x^3-3x+2=0}$ sprendinį ${\displaystyle x_2=1}$ arba ${\displaystyle x_3=1}$, gauname:

${\displaystyle 1^3-3\cdot 1+2=1-3+2=0.}$

Greičiau visus sprendinius randame iš formulių (22.1) ir (22.2):

${\displaystyle x_1=\frac{3q}{p}=\frac{3\cdot 2}{-3}=-2;}$

${\displaystyle x_2=x_3=-\frac{3q}{2p}=-\frac{3\cdot 2}{2\cdot (-3)}=1.}$

Duota pilna kubinė lygtis:

${\displaystyle a{x}^3+b{x}^2+cx+d=0.}$

Eliminuojame ${\displaystyle b{x}^2}$, padarę keitinį ${\displaystyle x=y-\frac{b}{3a}.}$ Tai pakeičia lygtį į tokią:

${\displaystyle a(y-\frac{b}{3a}{)}^3+b(y-\frac{b}{3a}{)}^2+c(y-\frac{b}{3a})+d=0,}$

${\displaystyle a(y^3-3y^2\frac{b}{3a}+3y(\frac{b}{3a}{)}^2-(\frac{b}{3a}{)}^3)+b(y^2-2y\frac{b}{3a}+(\frac{b}{3a}{)}^2)+c(y-\frac{b}{3a})+d=0,}$

${\displaystyle (y^3-y^2\frac{b}{a}+y\frac{b^2}{a^2}-\frac{b^3}{27a^3})+\frac{b}{a}(y^2-y\frac{2b}{3a}+\frac{b^2}{9a^2})+\frac{c}{a}(y-\frac{b}{3a})+\frac{d}{a}=0,}$

${\displaystyle (y^3-y^2\frac{b}{a}+y\frac{b^2}{a^2}-\frac{b^3}{27a^3})+(y^2\frac{b}{a}-y\frac{2b^2}{3a^2}+\frac{b^3}{9a^3})+(y\frac{c}{a}-\frac{bc}{3a^2})+\frac{d}{a}=0,}$

${\displaystyle y^3+y^2(-\frac{b}{a}+\frac{b}{a})+y(\frac{b^2}{a^2}-\frac{2b^2}{3a^2}+\frac{c}{a})-\frac{b^3}{27a^3}+\frac{b^3}{9a^3}-\frac{bc}{3a^2}+\frac{d}{a}=0,}$

${\displaystyle y^3+(\frac{c}{a}-\frac{b^2}{3a^2})y+(\frac{d}{a}+\frac{2b^3}{27a^3}-\frac{bc}{3a^2})=0.}$

Pažymime:

${\displaystyle V=\frac{c}{a}-\frac{b^2}{3a^2};}$

${\displaystyle P=\frac{d}{a}+\frac{2b^3}{27a^3}-\frac{bc}{3a^2}.}$

Turime kubinę lygtį:

${\displaystyle y^3+Vy+P=0.}$

Parenkame, kad ${\displaystyle V=3st}$, ${\displaystyle y=s-t}$. Tuomet turime:

${\displaystyle y^3+3sty+P=0,}$

${\displaystyle (s-t{)}^3+3st(s-t)+P=0,}$

${\displaystyle s^3-3s^{2}t+3s{t}^2-t^3+3st(s-t)+P=0,}$

${\displaystyle s^3-3s^{2}t+3s{t}^2-t^3+3s^{2}t-3s{t}^2+P=0,}$

${\displaystyle s^3-t^3+P=0,}$

${\displaystyle P=t^3-s^3.}$

Iš lygybės ${\displaystyle V=3st}$, turime ${\displaystyle t=\frac{V}{3s}.}$ Įstatę, gauname:

${\displaystyle P={\left(\frac{V}{3s}\right)}^3-s^3,}$

${\displaystyle \frac{V^3}{27s^3}-s^3=P,}$

${\displaystyle V^3-27s^6=27s^{3}P,}$

${\displaystyle V^3-27s^6-27s^{3}P=0,}$

${\displaystyle 27s^6+27s^{3}P-V^3=0.}$

Sprendžiame kaip kvadratinę lygtį, radę diskriminantą:

${\displaystyle D=(27P{)}^2-4\cdot 27\cdot (-V^3)=729P^2+108V^3;}$

${\displaystyle s^3=\frac{-27P}{2\cdot 27}\pm \frac{\sqrt{27^2{P}^2+4\cdot 27V^3}}{2\cdot 27},}$

${\displaystyle s^3=\frac{-P}{2}\pm \frac{\sqrt{P^2+\frac{4V^3}{27}}}{2},}$

${\displaystyle s^3=\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}.}$

${\displaystyle s=\sqrt[3]{\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}.}$

Prisimename, kad:

${\displaystyle P=t^3-s^3,}$

${\displaystyle P=t^3-(\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}),}$

${\displaystyle P=t^3+\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}},}$

${\displaystyle -t^3=-P+\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}},}$

${\displaystyle -t^3=-\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}},}$

${\displaystyle t^3=\frac{P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}.}$

${\displaystyle t=\sqrt[3]{\frac{P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}.}$

Prisimename, kad ${\displaystyle y=s-t}$, todėl gauname:

${\displaystyle y=s-t=\sqrt[3]{\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}-\sqrt[3]{\frac{P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}=\sqrt[3]{-\frac{P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}.}$

Tai ${\displaystyle y_1=\sqrt[3]{-\frac{P}{2}+\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}-\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}}$ ir tai ${\displaystyle y_2=\sqrt[3]{-\frac{P}{2}-\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}+\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}}$ yra tas pats, taigi ${\displaystyle y_1=y_2.}$

Randame lygties ${\displaystyle a{x}^3+b{x}^2+cx+d}$ sprendinį:

${\displaystyle x_1=y-\frac{b}{3a}=\sqrt[3]{-\frac{P}{2}+\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}-\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}-\frac{b}{3a},}$

čia

${\displaystyle V=\frac{c}{a}-\frac{b^2}{3a^2},}$

${\displaystyle P=\frac{d}{a}+\frac{2b^3}{27a^3}-\frac{bc}{3a^2}.}$

Duota pilna kubinė lygtis:

${\displaystyle a{x}^3+b{x}^2+cx+d=0.}$

Eliminuojame ${\displaystyle b{x}^2}$, padarę keitinį ${\displaystyle x=y-\frac{b}{3a}.}$ Tai pakeičia lygtį į tokią:

${\displaystyle a(y-\frac{b}{3a}{)}^3+b(y-\frac{b}{3a}{)}^2+c(y-\frac{b}{3a})+d=0,}$

${\displaystyle a(y^3-3y^2\frac{b}{3a}+3y(\frac{b}{3a}{)}^2-(\frac{b}{3a}{)}^3)+b(y^2-2y\frac{b}{3a}+(\frac{b}{3a}{)}^2)+c(y-\frac{b}{3a})+d=0,}$

${\displaystyle (y^3-y^2\frac{b}{a}+y\frac{b^2}{a^2}-\frac{b^3}{27a^3})+\frac{b}{a}(y^2-y\frac{2b}{3a}+\frac{b^2}{9a^2})+\frac{c}{a}(y-\frac{b}{3a})+\frac{d}{a}=0,}$

${\displaystyle (y^3-y^2\frac{b}{a}+y\frac{b^2}{a^2}-\frac{b^3}{27a^3})+(y^2\frac{b}{a}-y\frac{2b^2}{3a^2}+\frac{b^3}{9a^3})+(y\frac{c}{a}-\frac{bc}{3a^2})+\frac{d}{a}=0,}$

${\displaystyle y^3+y^2(-\frac{b}{a}+\frac{b}{a})+y(\frac{b^2}{a^2}-\frac{2b^2}{3a^2}+\frac{c}{a})-\frac{b^3}{27a^3}+\frac{b^3}{9a^3}-\frac{bc}{3a^2}+\frac{d}{a}=0,}$

${\displaystyle y^3+(\frac{c}{a}-\frac{b^2}{3a^2})y+(\frac{d}{a}+\frac{2b^3}{27a^3}-\frac{bc}{3a^2})=0.}$

Pažymime:

${\displaystyle V=\frac{c}{a}-\frac{b^2}{3a^2};}$

${\displaystyle P=\frac{d}{a}+\frac{2b^3}{27a^3}-\frac{bc}{3a^2}.}$

Turime kubinę lygtį:

${\displaystyle y^3+Vy+P=0.}$

Parenkame, kad ${\displaystyle V=-3st}$, ${\displaystyle y=s+t}$. Tuomet turime:

${\displaystyle y^3-3sty+P=0,}$

${\displaystyle (s+t{)}^3-3st(s+t)+P=0,}$

${\displaystyle s^3+3s^{2}t+3s{t}^2+t^3-3st(s+t)+P=0,}$

${\displaystyle s^3+3s^{2}t+3s{t}^2+t^3-3s^{2}t-3s{t}^2+P=0,}$

${\displaystyle s^3+t^3+P=0,}$

${\displaystyle P=-t^3-s^3.}$

Iš lygybės ${\displaystyle V=-3st}$, turime ${\displaystyle t=-\frac{V}{3s}.}$ Įstatę, gauname:

${\displaystyle P=-{(-\frac{V}{3s})}^3-s^3,}$

${\displaystyle \frac{V^3}{27s^3}-s^3=P,}$

${\displaystyle V^3-27s^6=27s^{3}P,}$

${\displaystyle V^3-27s^6-27s^{3}P=0,}$

${\displaystyle 27s^6+27s^{3}P-V^3=0.}$

Sprendžiame kaip kvadratinę lygtį, radę diskriminantą:

${\displaystyle D=(27P{)}^2-4\cdot 27\cdot (-V^3)=729P^2+108V^3;}$

${\displaystyle s^3=\frac{-27P}{2\cdot 27}\pm \frac{\sqrt{27^2{P}^2+4\cdot 27V^3}}{2\cdot 27},}$

${\displaystyle s^3=\frac{-P}{2}\pm \frac{\sqrt{P^2+\frac{4V^3}{27}}}{2},}$

${\displaystyle s^3=\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}.}$

${\displaystyle s=\sqrt[3]{\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}.}$

Prisimename, kad:

${\displaystyle P=-t^3-s^3,}$

${\displaystyle P=-t^3-(\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}),}$

${\displaystyle P=-t^3+\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}},}$

${\displaystyle t^3=-P+\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}},}$

${\displaystyle t^3=-\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}.}$

${\displaystyle t=\sqrt[3]{-\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}.}$

Prisimename, kad ${\displaystyle y=s+t}$, todėl gauname:

${\displaystyle y=s+t=\sqrt[3]{\frac{-P}{2}\pm \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}\mp \sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}.}$

Tai ${\displaystyle y_1=\sqrt[3]{-\frac{P}{2}+\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}-\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}}$ ir tai ${\displaystyle y_2=\sqrt[3]{-\frac{P}{2}-\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}+\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}}$ yra tas pats, taigi ${\displaystyle y_1=y_2.}$

Randame lygties ${\displaystyle a{x}^3+b{x}^2+cx+d}$ sprendinį:

${\displaystyle x_1=y-\frac{b}{3a}=\sqrt[3]{-\frac{P}{2}+\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}+\sqrt[3]{-\frac{P}{2}-\sqrt{\frac{P^2}{4}+\frac{V^3}{27}}}-\frac{b}{3a},}$

čia

${\displaystyle V=\frac{c}{a}-\frac{b^2}{3a^2},}$

${\displaystyle P=\frac{d}{a}+\frac{2b^3}{27a^3}-\frac{bc}{3a^2}.}$

Lygties sprendimo tikslas yra rasti išreikštą ${\displaystyle P}$ per s ir t (ar V). Nes jau turime išreikštą V per s ir t (${\displaystyle V=-3st;y=s+t}$). Tuomet, gerai žinant Binomo formulę (Niutono Binomo formulę) kubiniam laipsniui, nesunku nuspėti, kad gausime išreikštą P, kai pakelsime ${\displaystyle (s+t)}$ trečiuoju laipsniu ir atimsime ${\displaystyle 3st(s+t)=3s^{2}t+3s{t}^2.}$ Tuomet ir gausime ${\displaystyle P=-s^3-t^3.}$ Va taip:

${\displaystyle (s+t{)}^3-3st(s+t)+P=0,}$

${\displaystyle s^3+3s^{2}t+3s{t}^2+t^3-3st(s+t)+P=0,}$

${\displaystyle s^3+t^3+P=0.}$

Tada toliau gana nesunku rasti s ir t iš sistemos

${\displaystyle \{\begin{array}{cc}V+3st=0,& \\ s^3+t^3+P=0,& \end{array}}$

o tada ir y, žinant, kad ${\displaystyle y=s+t.}$