【发布时间】:2020-07-19 05:52:27
【问题描述】:
我被困在这里,我需要一些帮助!我有两张表,分别是费用_t 和预算_t。
这是我的预算表,这是父母可以有多个孩子并为他们分配预算的地方。
budget_t:
bud_id bud_date bud_amount bud_category chi_id par_id
------ ---------- ---------- ------------- ------ ------
1 2020-03-01 200 Food 1 1
2 2020-03-01 100 Entertainment 1 1
3 2020-04-01 200 Food 2 2
4 2020-04-01 100 Entertainment 3 2
这是我的支出表,这是记录儿童支出的地方。
exp_id exp_date exp_amount exp_category chi_id
------ ---------- ---------- ------------- ------
1 2020-03-10 50 Food 1
2 2020-03-20 50 Entertainment 1
3 2020-04-15 20 Food 2
4 2020-05-31 50 Food 1
我想要做的是,在 X 轴上绘制一个带有 MONTH(例如 March)的折线图,而在 Y 轴上为特定孩子的特定月份的总 bud_amount 和总 exp_amount .例如,chi_id="1" 的折线图将如下所示:-
我似乎无法理解 SQL 查询是如何工作的,因为我还是新手!但这些是我尝试过但不起作用的 SQL 查询。第三个查询似乎有效,但只能在一个表上工作。我不知道如何将两个表组合在一起。
SELECT exp_date, DATE_FORMAT(exp_date, '%Y-%m-01') AS month, sum(exp_amount) AS expense, sum(bud_amount) AS budget FROM expense_t INNER JOIN budget_t ON
expense_t.chi_id=budget_t.chi_id WHERE (exp_date BETWEEN "2019-04-07" AND "2020-04-07") AND expense_t.chi_id="1" GROUP BY month ORDER BY month // the sum for both amounts went crazy
SELECT exp_date, EXTRACT(MONTH FROM exp_date) AS month, sum(exp_amount) AS expense, sum(bud_amount) AS budget FROM expense_t INNER JOIN budget_t ON
expense_t.chi_id=budget_t.chi_id WHERE (exp_date BETWEEN "2019-04-07" AND "2020-04-07") AND expense_t.chi_id="1" GROUP BY month ORDER BY month // the sum for both amounts went crazy too
SELECT EXTRACT(MONTH FROM exp_date) AS month, sum(exp_amount) AS expense FROM expense_t WHERE (exp_date BETWEEN "2019-04-07" AND "2020-04-07")
AND chi_id="1" GROUP BY month ORDER BY month // the sum and month are perfectly fine but no idea how to combine with budget_t table.
来自 SQL 查询的所需结果(针对特定 chi_id 的特定月份的总预算和费用(取自日期):-
month total_budget total_expense chi_id
----- ------------ ------------- ------
March 300 100 1
April 0 0 1
May 0 50 1
etc...
这是我的 PHP 代码:-
<?php
include('conn.php');
if (!isset($c_id)) {
$c_id = $_GET['c_id'];
}
$sql = "Please-help-me!";
$result = mysqli_query($conn, $sql);
if(mysqli_num_rows($result)<=0)
{
die("<script>alert('Sorry, there is not info to generate chart. Please try again after you have recorded more expenses!'); window.history.go(-1);</script>");
}
else
{
$row = mysqli_fetch_array($result);
?>
<html>
<head>
<link href="css/bootstrap.min.css" rel="stylesheet">
<link href="css/font-awesome.min.css" rel="stylesheet">
<link href="css/datepicker3.css" rel="stylesheet">
<link href="css/styles.css" rel="stylesheet">
<script type="text/javascript" src="https://www.gstatic.com/charts/loader.js"></script>
<script type="text/javascript">
google.charts.load('current', {'packages':['corechart']});
google.charts.setOnLoadCallback(drawChart);
function drawChart() {
var data = google.visualization.arrayToDataTable([
['Date', 'Budget', 'Expense'],
<?php
while($row=mysqli_fetch_array($result))
{
echo "['".$row["month"]."', '".$row['budget']."', '".$row['expense']."'],";
}
?>
]);
var options = {
title: 'Budget-Expense Line Chart for <?php echo "$user" ?>',
curveType: 'function',
pointSize: 10,
legend: { position: 'right' }
};
var chart = new google.visualization.LineChart(document.getElementById('curve_chart'));
chart.draw(data, options);
}
</script>
</head>
<body>
<div id="curve_chart" style="width: 900px; height: 500px"></div>
</body>
<?php
}
?>
</html>
【问题讨论】:
-
您已经包含了很多内容。谢谢你。你能从 SQL 查询中显示你想要的输出吗?你有哪个 MySQL 版本
SELECT VERSION()作为查询? -
我现在已经在我的问题中添加了我想要的输出,我不确定 'SELECT VERSION()' 但这里是我的版本:phpMyAdmin 4.8.6、MySQL 5.7.26 和 PHP 7.2.18
-
太棒了。 5.7.26 是我所追求的。请测试@Akina 的解决方案,如果它适合您,请将其标记为正确。
-
嘿,丹!该查询的工作方式与我想要的结果完全一样(ps 我对其进行了一些调整以适合我的图表)[链接](imgur.com/EfTtJYR)非常感谢!但是当我在我的 PHP 代码中运行相同的查询时,数据的第一行像这样丢失了 link