If statement with 2 commands

4 ビュー (過去 30 日間)
Jay
Jay 2016 年 4 月 29 日
コメント済み: Stephen23 2016 年 4 月 29 日
I have a 1 x 3 matrix (DMS).
Values are [26, 50, 60]
Code is:
if DMS(1,3) == 60
DMS (1,2) = DMS (1,2) + 1 & DMS(1,3) == 0
else
end
The purpose is to roll over (add 1) to the second elements value and set the third elements value to 0.
During runtime I am getting a value of [26, 0, 60].
What is wrong with my coding of the if statement for the desired values to be returned?

サインインしてこの質問に回答する。

採用された回答

Roger Stafford
Roger Stafford 2016 年 4 月 29 日
編集済み: Roger Stafford 2016 年 4 月 29 日
Your code should be:
if DMS(1,3) == 60
DMS (1,2) = DMS (1,2) + 1;
DMS(1,3) = 0;
end
The '&' operator is not to be used as "do this AND do this". It functions only as a logical operator such as (x<10)&(x>3) meaning that it is true if x is less than ten and greater than 3.
Also the '==' is not an assignment symbol. It is another logical operator. The expression x==5 is true whenever x is exactly equal to 5.
  1 件のコメント
Stephen23
Stephen23 2016 年 4 月 29 日
Justin's "Answer" moved here:
Thanks Roger,
I should also use = and not == for 0 value.
That was fast and easy.
Thanks again.

サインインしてコメントする。

その他の回答 (1 件)

Elias Gule
Elias Gule 2016 年 4 月 29 日
Ok, I think I see two problems in your if statement. 1). == is not an assignment operation, but rather a comparative one. So
DMS(1,3) == 0
checks if the value at row 1 column 3 of the DMS vector/matrix is 0; in your case it checks whether 60 is equal to 0, which returns 0 (a logical false is Matlab). 2). The & operator is a logical and. So
DMS (1,2) = DMS (1,2) + 1 & DMS(1,3) == 0
first calculates the value of DMS(1,2) + 1 => 51, then performs the operation described in 1) above, resulting 51 & 0, which returns 0.
To solve your problem: replace the ampersand ("&") with a semicolon (";"), and the "==" with "=", such that the statement will now be,
DMS (1,2) = DMS (1,2) + 1; DMS(1,3) = 0;

カテゴリ

Help Center および File ExchangeSimulation, Tuning, and Visualization についてさらに検索

タグ

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by