C++ 类以时尚 TypeError 暴露于 QML 错误:对象的属性“..."不是函数 [英] C++ class exposed to QML error in fashion TypeError: Property '...' of object is not a function
问题描述
我已经成功地向 QML 公开了一个 C++ 类.它在 Qt Creator 中注册并找到.其目的是连接数据库,如下代码所示:
I've successfully exposed a C++ class to QML. It is registered and found in Qt Creator. It's purpose is to connect to a database, as shown in following code:
#ifndef UESQLDATABASE_H
#define UESQLDATABASE_H
#include <QObject>
#include <QtSql/QSqlDatabase>
class UeSqlDatabase : public QObject
{
Q_OBJECT
Q_PROPERTY(bool m_ueConnected READ isConnected WRITE setConnected NOTIFY ueConnectedChanged)
private:
bool m_ueConneted;
inline void setConnected(const bool& ueConnected)
{ this->m_ueConneted=ueConnected; }
public:
explicit UeSqlDatabase(QObject *parent = 0);
Q_INVOKABLE inline const bool& isConnected() const
{ return this->m_ueConneted; }
~UeSqlDatabase();
signals:
void ueConnectedChanged();
public slots:
void ueConnectToDatabase (const QString& ueStrHost, const QString& ueStrDatabase,
const QString& ueStrUsername, const QString& ueStrPassword);
};
#endif // UESQLDATABASE_H
但是,当我尝试从以下 QML 代码调用方法 isConnected() 时
However, when I try to call method isConnected() from the following QML code
import QtQuick 2.0
Rectangle
{
id: ueMenuButton
property string ueText;
width: 192
height: 64
radius: 8
states: [
State
{
name: "ueStateSelected"
PropertyChanges
{
target: gradientStop1
color: "#000000"
}
PropertyChanges
{
target: gradientStop2
color: "#3fe400"
}
}
]
gradient: Gradient
{
GradientStop
{
id: gradientStop1
position: 0
color: "#000000"
}
GradientStop
{
position: 0.741
color: "#363636"
}
GradientStop
{
id: gradientStop2
position: 1
color: "#868686"
}
}
border.color: "#ffffff"
border.width: 2
antialiasing: true
Text
{
id: ueButtonText
color: "#ffffff"
text: qsTr(ueText)
clip: false
z: 0
scale: 1
rotation: 0
font.strikeout: false
anchors.fill: parent
font.bold: true
style: Text.Outline
textFormat: Text.RichText
verticalAlignment: Text.AlignVCenter
horizontalAlignment: Text.AlignHCenter
font.pixelSize: 16
}
MouseArea
{
id: ueClickArea
antialiasing: true
anchors.fill: parent
onClicked:
{
uePosDatabase.ueConnectToDatabase("127.0.0.1",
"testDb",
"testUser",
"testPassword");
if(uePosDatabase.isConnected()==true)
{
ueMenuButton.state="ueStateSelected";
}
else
{
ueMenuButton.state="base state"
}
}
}
}
我收到以下错误:
qrc:/UeMenuButton.qml:92: TypeError: 对象 UeSqlDatabase(0x1772060) 的属性isConnected"不是函数
qrc:/UeMenuButton.qml:92: TypeError: Property 'isConnected' of object UeSqlDatabase(0x1772060) is not a function
我做错了什么?
推荐答案
你有这个错误是因为你在 C++ 中声明了属性 isConnected 但你从 QML 中以错误的方式调用它:uePosDatabase.isConnected 是正确的方法,而不是 uePosDatabase.isConnected().
You have this error because you have declared the property isConnected in C++ but you're calling it from QML in the wrong way: uePosDatabase.isConnected is the correct way, not uePosDatabase.isConnected().
如果你想调用函数isConnected(),你应该改变它的名字来区别于属性,比如getIsConnected().鉴于您的属性声明,您既不需要直接调用此函数,也不需要使用 Q_INVOKABLE 宏从 QML 调用它.
If you want to call the function isConnected() you should change its name to differate it from the property, like getIsConnected(). Given your property declaration, you neither need to call this function directly nor you need to make it callable from QML with the Q_INVOKABLE macro.
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