Translation of "differential equation" to Japanese language:
Examples (External sources, not reviewed)
| Homogeneous differential equation. | 微分方程式内でも |
| We're solving a differential equation. | 解には e があります |
| What is a differential equation? | 微分方程式は 未知の関数とその導関数に関する |
| So what is a differential equation? | それは微分を含む方程式です |
| We have solved this differential equation. | これは 内包的な形ですが |
| This was the original differential equation. | そのため定数を解決したい場合は |
| What does a homogeneous differential equation mean? | 通常の1階微分方程式で |
| Let's say this is my differential equation. | 3xy yの2乗 |
| Multiply it times our original differential equation. | 完全方程式に変換し |
| Let's do one more homogeneous differential equation, or first order homogeneous differential equation, to differentiate it from the homogeneous linear differential equations we'll do later. | 1階斉次微分方程式です 後に習う斉次線形微分方程式とは異なります 後に習う斉次線形微分方程式とは異なります |
| So let's say this is my differential equation. | x とyのいくつかの関数があります |
| So, for example, this is a differential equation. | これは 最初の例になります |
| So how do we solve this differential equation? | 2つの解き方があります |
| You're saying what function satisfies this differential equation. | この微分方程式を満たすかです だから心に留めておいてください |
| See, they have this as a differential equation. | この解き方はここでは書きません |
| The differential equation must be at least first order | 微分方程式は少なくとも一次でなければなりません |
| So what is a linear second order differential equation? | 微分の紹介のビデオで |
| But let's solve this properly as a differential equation. | これらの微分は ほとんどの場合 実際の数値のように |
| And we got the solution to the differential equation. | これを 確認できます |
| Let's solve another 2nd order linear homogeneous differential equation. | 解いてみましょう では 問題を書きます |
| An ordinary differential equation is what I wrote down. | ある変数が他の1つの変数に依存します |
| We had a differential equation that, at least superficially, | 完全方程式に見えましたが |
| So we could rewrite our differential equation like this. | このような方程式に書けます 答えは psi c と知っています |
| So it really shouldn't change the solution of that equation, or that differential equation. | だから元の方程式の解と 同じ解を持ちます では 完全方程式を解きましょう |
| And even within differential equations, we'll learn later there's a different type of homogeneous differential equation. | 異なった種類の斉次微分方程式が存在します 異なった種類の斉次微分方程式が存在します 斉次線形微分方程式と呼ばれるものは |
| Well, a differential equation is an equation that involves an unknown function and its derivatives. | 等式です どう意味でしょう |
| And this is the general solution of this differential equation. | これが この微分方程式の一般解です これらが 成り立つことは すでに e rxで成り立つのが |
| So this is also a solution to the differential equation. | では 次にどのような特性があるでしょう |
| So this is the general solution to this differential equation. | 面白いものです |
| So what is the particular solution to this differential equation? | 特殊解は何ですか 緑色で書きます |
| So the first question is what is a differential equation? | 方程式を知っていますね |
| Here, for a differential equation, the solution is a function. | 答えは関数です このxの関数を見つけることが |
| So this was also a solution to this differential equation. | 次に |
| And, in the last video, we had this differential equation. | 完全方程式のように見えましたが |
| Resolving a differential equation means finding the functions that satisfies it. | 微分方程式を解くというのは それを満足するような関数を見つけ出すということだ |
| You actually need two initial conditions to solve this differential equation. | 必要とします 例えば x の特定の値でyが何であるか |
| So anyway, this was the general solution to this differential equation. | 一般解です 特殊解を求める場合は |
| Well, let's substitute this whole thing into our original differential equation, right? | 微分方程式に代入してみましょう A 掛ける二階の導関数 |
| And that would be the particular solution, then, for this differential equation. | 特定の回答となります 次のビデオでは さらにいくつかの問題を |
| So they claim that this is a solution of this differential equation. | 答えとされています これがなんだか見てみましょう |
| Or as you could call this, a second order ordinary differential equation. | これは2次常微分方程式と言えます 2つ目に これが |
| Now, all of the sudden, I have a non linear differential equation. | 微分方程式になります これは 非線形です |
| And this is actually a separable differential equation in and of itself. | これは変数分離形微分です これは 副ー微分方程式のようなもので |
| It's kind of a sub differential equation to solve our broader one. | 元の微分方程式を解くに使用されます ここでは 積分因子を探しています |
| So first of all, what is the order of this differential equation? | 微分方程式は何次ですか 最高の導関数は |
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