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  • Image 1 becomes image 2 with sliding effect from left to right?

    - by Paul
    I would like to show a second image appearing while a "door" is closing on my character. I've got my character in the middle of the screen and a door coming from the left. When the door passes my character, I would like to have this second image appearing little by little. So far, I've gotten by with fadingOut the character and then fadingIn my second image of the character at the same position when the door is completely closed, but I would like to have both of them at the same time. (the effect that image 1 becomes image 2 when the door is sliding from left to right). Would you know how to do this with Cocos2d? Here are the images : at first, the character is blue, and the door is coming from the left : Then, behind the black door, the character becomes red, but only behind this door, so it stays blue when the door is not on him, and will become completely red when the door passes the character : EDIT : with this code, the black door hides the red and blue rectangles : (And if i add each of my layers at a different depth, and only use GL_LESS, same thing) blue.position = ccp( size.width*0.5 , size.height/2 ); red.position = ccp( size.width*0.46 , size.height/2 ); black.position = ccp( size.width*0.1 , size.height/2 ); glEnable(GL_DEPTH_TEST); [batch addChild:red z:0]; [batch addChild:black z:2]; glDepthFunc(GL_GREATER); [batch addChild:blue z:1]; glDepthFunc(GL_LESS); id action1 = [CCMoveTo actionWithDuration:3 position:ccp(size.width,size.height/2)]; [black runAction: [CCSequence actions:action1, nil]];

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  • Best solution for getting referral information in PHP

    - by absentx
    I am currently redoing some link structuring on a website. In the past we have used specific php files on the last step to direct the user to the proper place. Example: www.mysite.com/action/go-to-blue.php or www.mysite.com/action/short/go-to-red.php www.mysite.com/action/tall/go-to-red.php We are now restructuring to eliminate the /short/ or /tall/ directory. What this means is now "go-to-blue.php" will be doing some extra processing to make sure it sends the visitor to the proper place. The static method of the past was quite effective, because, well, if they left from that page we knew we had it right. Now since we are 301 redirecting action/short/go-to-red.php to just action/go-to-red.php it is quite important on "go-to-red.php" that we realize a user may have been redirected from /short/ or /tall/. So right now I am using HTTP_REFERRER and of course in my testing that works fine, but after a lot of reading it is clear that this is not a solid solution, so I was starting to brainstorm on other ways to check and make sure we get the proper referral information. If we could check HTTP_REFERRER plus some other test, I would feel confident we have a pretty good system in place to send the visitor to the right place. Some questions/comments: Could I use a session variable or a cookie to accomplish this goal? If so, would that be maintained through the 301 redirect? I don't see why it wouldn't be.. Passing the url in the url is not an option in this case.

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  • Bouncing off a circular Boundary with multiple balls?

    - by Anarkie
    I am making a game like this : Yellow Smiley has to escape from red smileys, when yellow smiley hits the boundary game is over, when red smileys hit the boundary they should bounce back with the same angle they came, like shown below: Every 10 seconds a new red smiley comes in the big circle, when red smiley hits yellow, game is over, speed and starting angle of red smileys should be random. I control the yellow smiley with arrow keys. The biggest problem I have reflecting the red smileys from the boundary with the angle they came. I don't know how I can give a starting angle to a red smiley and bouncing it with the angle it came. I would be glad for any tips! My js source code : var canvas = document.getElementById("mycanvas"); var ctx = canvas.getContext("2d"); // Object containing some global Smiley properties. var SmileyApp = { radius: 15, xspeed: 0, yspeed: 0, xpos:200, // x-position of smiley ypos: 200 // y-position of smiley }; var SmileyRed = { radius: 15, xspeed: 0, yspeed: 0, xpos:350, // x-position of smiley ypos: 65 // y-position of smiley }; var SmileyReds = new Array(); for (var i=0; i<5; i++){ SmileyReds[i] = { radius: 15, xspeed: 0, yspeed: 0, xpos:350, // x-position of smiley ypos: 67 // y-position of smiley }; SmileyReds[i].xspeed = Math.floor((Math.random()*50)+1); SmileyReds[i].yspeed = Math.floor((Math.random()*50)+1); } function drawBigCircle() { var centerX = canvas.width / 2; var centerY = canvas.height / 2; var radiusBig = 300; ctx.beginPath(); ctx.arc(centerX, centerY, radiusBig, 0, 2 * Math.PI, false); // context.fillStyle = 'green'; // context.fill(); ctx.lineWidth = 5; // context.strokeStyle = '#003300'; // green ctx.stroke(); } function lineDistance( positionx, positiony ) { var xs = 0; var ys = 0; xs = positionx - 350; xs = xs * xs; ys = positiony - 350; ys = ys * ys; return Math.sqrt( xs + ys ); } function drawSmiley(x,y,r) { // outer border ctx.lineWidth = 3; ctx.beginPath(); ctx.arc(x,y,r, 0, 2*Math.PI); //red ctx.fillStyle="rgba(255,0,0, 0.5)"; ctx.fillStyle="rgba(255,255,0, 0.5)"; ctx.fill(); ctx.stroke(); // mouth ctx.beginPath(); ctx.moveTo(x+0.7*r, y); ctx.arc(x,y,0.7*r, 0, Math.PI, false); // eyes var reye = r/10; var f = 0.4; ctx.moveTo(x+f*r, y-f*r); ctx.arc(x+f*r-reye, y-f*r, reye, 0, 2*Math.PI); ctx.moveTo(x-f*r, y-f*r); ctx.arc(x-f*r+reye, y-f*r, reye, -Math.PI, Math.PI); // nose ctx.moveTo(x,y); ctx.lineTo(x, y-r/2); ctx.lineWidth = 1; ctx.stroke(); } function drawSmileyRed(x,y,r) { // outer border ctx.lineWidth = 3; ctx.beginPath(); ctx.arc(x,y,r, 0, 2*Math.PI); //red ctx.fillStyle="rgba(255,0,0, 0.5)"; //yellow ctx.fillStyle="rgba(255,255,0, 0.5)"; ctx.fill(); ctx.stroke(); // mouth ctx.beginPath(); ctx.moveTo(x+0.4*r, y+10); ctx.arc(x,y+10,0.4*r, 0, Math.PI, true); // eyes var reye = r/10; var f = 0.4; ctx.moveTo(x+f*r, y-f*r); ctx.arc(x+f*r-reye, y-f*r, reye, 0, 2*Math.PI); ctx.moveTo(x-f*r, y-f*r); ctx.arc(x-f*r+reye, y-f*r, reye, -Math.PI, Math.PI); // nose ctx.moveTo(x,y); ctx.lineTo(x, y-r/2); ctx.lineWidth = 1; ctx.stroke(); } // --- Animation of smiley moving with constant speed and bounce back at edges of canvas --- var tprev = 0; // this is used to calculate the time step between two successive calls of run function run(t) { requestAnimationFrame(run); if (t === undefined) { t=0; } var h = t - tprev; // time step tprev = t; SmileyApp.xpos += SmileyApp.xspeed * h/1000; // update position according to constant speed SmileyApp.ypos += SmileyApp.yspeed * h/1000; // update position according to constant speed for (var i=0; i<SmileyReds.length; i++){ SmileyReds[i].xpos += SmileyReds[i].xspeed * h/1000; // update position according to constant speed SmileyReds[i].ypos += SmileyReds[i].yspeed * h/1000; // update position according to constant speed } // change speed direction if smiley hits canvas edges if (lineDistance(SmileyApp.xpos, SmileyApp.ypos) + SmileyApp.radius > 300) { alert("Game Over"); } // redraw smiley at new position ctx.clearRect(0,0,canvas.height, canvas.width); drawBigCircle(); drawSmiley(SmileyApp.xpos, SmileyApp.ypos, SmileyApp.radius); for (var i=0; i<SmileyReds.length; i++){ drawSmileyRed(SmileyReds[i].xpos, SmileyReds[i].ypos, SmileyReds[i].radius); } } // uncomment these two lines to get every going // SmileyApp.speed = 100; run(); // --- Control smiley motion with left/right arrow keys function arrowkeyCB(event) { event.preventDefault(); if (event.keyCode === 37) { // left arrow SmileyApp.xspeed = -100; SmileyApp.yspeed = 0; } else if (event.keyCode === 39) { // right arrow SmileyApp.xspeed = 100; SmileyApp.yspeed = 0; } else if (event.keyCode === 38) { // up arrow SmileyApp.yspeed = -100; SmileyApp.xspeed = 0; } else if (event.keyCode === 40) { // right arrow SmileyApp.yspeed = 100; SmileyApp.xspeed = 0; } } document.addEventListener('keydown', arrowkeyCB, true); JSFiddle : http://jsfiddle.net/gj4Q7/

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  • Debugging Minimum Translation Vector

    - by SyntheCypher
    I implemented the minimum translation vector from codezealot's tutorial on SAT (Separating Axis Theorem) but I'm having an issue I can't quite figure out. Here's the example I have: As you can see in top and bottom left images regardless of the side the of the green car which red car is penetrating the MTV for the red car still remains as a negative number also here is the same example when the front of the red car is facing the opposite direction the number will always be positive. When the red car is past the half way through the green car it should switch polarity. I thought I'd compensated for this in my code, but apparently not either that or it's a bug I can find. Here is my function for finding and returning the MTV, any help would be much appreciated: Code

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  • What's the best way to compare blocks in a matching game that can be multiple colors?

    - by Ryan Detzel
    I have a match 3-4 game and the blocks can be one of 7 colors. There are an addition 7 blocks that are a mix of the original 7 colors so for example there is a red and blue block and there is also a red/blue block which can be matched with either the red or the blue. My original thought is just to use binary operations so. int red = 0x000000001; int blue = 0x000000010; int redblue = 0x000000011; Then just do an & operation so see if they match. Does this sound like a decent plan or am I over complicating it? edit: Better yet so it's more readable. int red = 1; int blue = 2; int red_blue = 3; int yellow = 4; int red_yellow = 5; maybe as defines or static vars?

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  • BoundingSpheres move when they should not

    - by NDraskovic
    I have a XNA 4.0 project in which I load a file that contains type and coordinates of items I need to draw to the screen. Also I need to check if one particular type (the only movable one) is passing in front or trough other items. This is the code I use to load the configuration: if (ks.IsKeyDown(Microsoft.Xna.Framework.Input.Keys.L)) { this.GraphicsDevice.Clear(Color.CornflowerBlue); Otvaranje.ShowDialog(); try { using (StreamReader sr = new StreamReader(Otvaranje.FileName)) { String linija; while ((linija = sr.ReadLine()) != null) { red = linija.Split(','); model = red[0]; x = red[1]; y = red[2]; z = red[3]; elementi.Add(Convert.ToInt32(model)); podatci.Add(new Vector3(Convert.ToSingle(x), Convert.ToSingle(y), Convert.ToSingle(z))); sfere.Add(new BoundingSphere(new Vector3(Convert.ToSingle(x), Convert.ToSingle(y), Convert.ToSingle(z)), 1f)); } } } catch (Exception ex) { Window.Title = ex.ToString(); } } The "Otvaranje" is an OpenFileDialog object, "elementi" is a List (determines the type of item that would be drawn), podatci is a List (determines the location where the items will be drawn) and sfere is a List. Now I solved the picking algorithm (checking for ray and bounding sphere intersection) and it works fine, but the collision detection does not. I noticed, while using picking, that BoundingSphere's move even though the objects that they correspond to do not. The movable object is drawn to the world1 Matrix, and the static objects are drawn into the world2 Matrix (world1 and world2 have the same values, I just separated them so that the static elements would not move when the movable one does). The problem is that when I move the item I want, all boundingSpheres move accordingly. How can I move only the boundingSphere that corresponds to that particular item, and leave the rest where they are?

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  • Conditional formatting & vlookup

    - by zorama
    Please help me with the formula: Main Sheet is Sheet2 B COLUMN I want to look up sheet1 A & B columns with Sheet2 A & B columns from 1 workbook that if sheet2 A are same/equal as Sheet1 A column, also if Sheet2 B column are same/equal as Sheet1 B column , how will I highlight the Sheet2 B column that if Sheet1 A & B + Sheet2 A & B are exactly equal . EXAMPLE: SHEET 1 SHEET 2 SHEET 2 Result A B A B A B CODE NO CODE NO CODE NO A 12 B 205 B 205 (highlight to red) B 105 B 20 B 20 (highlight to red) A 45 B 100 B 100 A 56 A 56 A 56 (highlight to red) A 78 B 25 B 25 A 100 A 12 A 12 (highlight to red) B 77 A 45 A 45 (highlight to red) B 108 A 20000 A 20000 B 20 B 205

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  • simple sql group by custom groups question [migrated]

    - by alex
    imagine a mysql table that only has 2 columns, an id and a name of a color. with this query I know how many id's do I have for each color. SELECT color_name, count(id) FROM color_table GROUP BY (color_name); red:10 blue:5 yellow:3 green:1 my question is, is there a way I can specify to the "group by" some custom groups?? i mean, is there a query that results in this??: red:10 colors different than red: 9

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  • Windows Form color changing

    - by Sef
    Hello, So i am attempting to make a MasterMind program as sort of exercise. Field of 40 picture boxes (line of 4, 10 rows) 6 buttons (red, green, orange, yellow, blue, purple) When i press one of these buttons (lets assume the red one) then a picture box turns red. My question is how do i iterate trough all these picture boxes? I can get it to work but only if i write : And this is offcourse no way to write this, would take me countless of lines that contain basicly the same. private void picRood_Click(object sender, EventArgs e) { UpdateDisplay(); pb1.BackColor = System.Drawing.Color.Red; } Press the red button - first picture box turns red Press the blue button - second picture box turns blue Press the orange button - third picture box turns orange And so on... Ive had a previous similar program that simulates a traffic light, there i could assign a value to each color (red 0, orange 1, green 2). Is something similar needed or how exactly do i adress all those picture boxes and make them correspond to the proper button. Best Regards.

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  • Building Reducisaurus URLs

    - by Alix Axel
    I'm trying to use Reducisaurus Web Service to minify CSS and Javascript but I've run into a problem... Suppose I've two unminified CSS at: http:/domain.com/dynamic/styles/theme.php?color=red http:/domain.com/dynamic/styles/typography.php?font=Arial According to the docs I should call the web service like this: http:/reducisaurus.appspot.com/css?url=http:/domain.com/dynamic/styles/theme.php?color=red And if I want to minify both CSS files at once: http:/reducisaurus.appspot.com/css?url1=http:/domain.com/dynamic/styles/theme.php?color=red&url2=http:/domain.com/dynamic/styles/theme.php?color=red If I wanted to specify a different number of seconds for the cache (3600 for instance) I would use: http:/reducisaurus.appspot.com/css?url=http:/domain.com/dynamic/styles/theme.php?color=red&expire_urls=3600 And again for both CSS files at once: http:/reducisaurus.appspot.com/css?url1=http:/domain.com/dynamic/styles/theme.php?color=red&url2=http:/domain.com/dynamic/styles/theme.php?color=red&expire_urls=3600 Now my question is, how does Reducisaurus knows how to separate the URLs I want? How does it know that &expire_urls=3600 is not part of my URL? And how does it know that &url2=... is not a GET argument of url1? I'm I doing this right? Do I need to urlencode my URLs? I took a peek into the source code and although my Java is very poor it seems that the methods acquireFromRemoteUrl() and getSortedParameterNames() from the BaseServlet.java file hold the answers to my question - if a GET argument name contains - or _ they should be ignored?! What about multiple &url(n)s?

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  • python global variable not working in apache

    - by Suhail
    I am facing issue with the global variable, when i run in the django development server it works fine, but in apache it doesn't work here is the code below: red= "/foodfolio3/test/" def showAddRecipe(request): #global objc if "userid" in request.session: objc["ErrorMsgURL"]= "" try: urlList= request.POST URL= str(urlList['url']) URL= URL.strip('http://') URL= "http://" + URL recipe= __addRecipeUrl__(URL) if (recipe == 'FailToOpenURL') or (recipe == 'Invalid-website-URL'): #request.session["ErrorMsgURL"]= "Kindly check URL, Please enter a valid URL" objc["ErrorMsgURL"]= "Kindly check URL, Please enter a valid URL" print "here global_context =", objc arurl= HttpResponseRedirect("/foodfolio3/add/import/") arurl['ErrorMsgURL']= objc["ErrorMsgURL"] #return HttpResponseRedirect("/foodfolio3/add/import/") #return render_to_response('addRecipeUrl.html', objc, context_instance = RequestContext(request)) return (arurl) else: objc["recipe"] = recipe return render_to_response('addRecipe.html', objc, context_instance = RequestContext(request)) except: objc["recipe"] = "" return render_to_response('addRecipe.html', objc, context_instance = RequestContext(request)) else: global red red= "/foodfolio3/add/" return HttpResponseRedirect("/foodfolio3/login") def showAddRecipeUrl(request): if "userid" in request.session: return render_to_response('addRecipeUrl.html', objc, context_instance = RequestContext(request)) else: global red red= "/foodfolio3/add/import/" return HttpResponseRedirect("/foodfolio3/login") def showLogin(request): obj = {} obj["error_message"] = "" obj["registered"] = "" if request.method == "POST": if (red == "/foodfolio3/test"): next= '/foodfolio3/recipes' else: next= red try: username = request.POST['username'] password = request.POST['password'] user = authenticate(username=username, password=password) except: user = authenticate(request=request) if user is not None: if user.is_active: login(request, user) request.session["userid"] = user.id # Redirect to a success page. return HttpResponseRedirect(next) this code works fine in django development server, but in apache, the url is getting redirected to '/foodfolio3/recipes'

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  • Four-color theorem in Prolog (using a dynamic predicate)

    - by outa
    Hi, I'm working on coloring a map according to the four-color theorem (http://en.wikipedia.org/wiki/Four_color_theorem) with SWI-Prolog. So far my program looks like this: colour(red). colour(blue). map_color(A,B,C) :- colour(A), colour(B), colour(C), C \= B, C \= A. (the actual progam would be more complex, with 4 colors and more fields, but I thought I'd start out with a simple case) Now, I want to avoid double solutions that have the same structure. E.g. for a map with three fields, the solution "red, red, blue" would have the same structure as "blue, blue, red", just with different color names, and I don't want both of them displayed. So I thought I would have a dynamic predicate solution/3, and call assert(solution(A,B,C)) at the end of my map_color predicate. And then, for each solution, check if they already exist as a solution/3 fact. The problem is that I would have to assert something like solution(Color1,Color1,Color2), i.e. with variables in order to make a unification check. And I can't think of a way to achieve this. So, the question is, what is the best way to assert a found solution and then make a unification test so that "red, red, blue" would unify with "blue, blue, red"?

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  • Java image conversion to RGB565

    - by Vladimir
    I try to convert image to RGB565 format. I read this image: BufferedImage bufImg = ImageIO.read(imagePathFile); sendImg = new BufferedImage(CONTROLLER_LCD_WIDTH/*320*/, CONTROLLER_LCD_HEIGHT/*240*/, BufferedImage.TYPE_USHORT_565_RGB); sendImg .getGraphics().drawImage(bufImg, 0, 0, CONTROLLER_LCD_WIDTH/*320*/, CONTROLLER_LCD_HEIGHT/*240*/, null); Here is it: Then I convert it to RGB565: int numByte=0; byte[] OutputImageArray = new byte[CONTROLLER_LCD_WIDTH*CONTROLLER_LCD_HEIGHT*2]; int i=0; int j=0; int len = OutputImageArray.length; for (i=0;i<CONTROLLER_LCD_WIDTH;i++) { for (j=0;j<CONTROLLER_LCD_HEIGHT;j++) { Color c = new Color(sendImg.getRGB(i, j)); int aRGBpix = sendImg.getRGB(i, j); int alpha; int red = c.getRed(); int green = c.getGreen(); int blue = c.getBlue(); //RGB888 red = (aRGBpix >> 16) & 0x0FF; green = (aRGBpix >> 8) & 0x0FF; blue = (aRGBpix >> 0) & 0x0FF; alpha = (aRGBpix >> 24) & 0x0FF; //RGB565 red = red >> 3; green = green >> 2; blue = blue >> 3; //A pixel is represented by a 4-byte (32 bit) integer, like so: //00000000 00000000 00000000 11111111 //^ Alpha ^Red ^Green ^Blue //Converting to RGB565 short pixel_to_send = 0; int pixel_to_send_int = 0; pixel_to_send_int = (red << 11) | (green << 5) | (blue); pixel_to_send = (short) pixel_to_send_int; //dividing into bytes byte byteH=(byte)((pixel_to_send >> 8) & 0x0FF); byte byteL=(byte)(pixel_to_send & 0x0FF); //Writing it to array - High-byte is second OutputImageArray[numByte]=byteH; OutputImageArray[numByte+1]=byteL; numByte+=2; } } Then I try to restore this from resulting array OutputImageArray: i=0; j=0; numByte=0; BufferedImage NewImg = new BufferedImage(CONTROLLER_LCD_WIDTH, CONTROLLER_LCD_HEIGHT, BufferedImage.TYPE_USHORT_565_RGB); for (i=0;i<CONTROLLER_LCD_WIDTH;i++) { for (j=0;j<CONTROLLER_LCD_HEIGHT;j++) { int curPixel=0; int alpha=0x0FF; int red; int green; int blue; byte byteL=0; byte byteH=0; byteH = OutputImageArray[numByte]; byteL = OutputImageArray[numByte+1]; curPixel= (byteH << 8) | (byteL); //RGB565 red = (curPixel >> (6+5)) & 0x01F; green = (curPixel >> 5) & 0x03F; blue = (curPixel) & 0x01F; //RGB888 red = red << 3; green = green << 2; blue = blue << 3; //aRGB curPixel = 0; curPixel = (alpha << 24) | (red << 16) | (green << 8) | (blue); NewImg.setRGB(i, j, curPixel); numByte+=2; } } I output this restored image. But I see that it looks very poor. I expected the lost of pictures quality. But as I thought, this picture has to have almost the same quality as the previous picture. - Is it right? Is my code right?

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  • First order logic formula

    - by user177883
    R(x) is a red block B(x) is a blue block T(x,y) block x is on top of block y Question: Write a formula asserting that if no red block is on top of a red block then no red block is on top of itself. My answer: (Ax)(Ay)(R(x) and R(y) - ~T(x,y))-(Ax)(R(x)- ~T(x,x)) A = For all

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  • Game show game engine [closed]

    - by Red
    So, I am pretty new to the world of game development, so I am a bit fuzzy on what I require. Could someone suggest a game engine that I could use? I need it to be light weight (my game won't require that much power) and have networking functionality for multiplay or even an MMO aspect. The game I am making is like a game show, so it is your basic choose and answer hit the buzzer kind of game. Any suggestions? I would also like it to be open source or at the least free. I would like to support open source projects.

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  • ¿Acaso el CFO necesita convertirse en un tecnólogo?

    - by RED League Heroes-Oracle
    La tecnología actual está afectando las funciones de toda la empresa. El CIO debe buscar nuevas maneras de ser un socio estratégico para el negocio y el CMO constantemente se enfrenta con decisiones acerca de la tecnología que hagan la función de marketing más eficiente a través de los datos. Incluso el papel CFO no es inmune. "El CFO en realidad no tiene que ser un tecnólogo, pero tienen que entender cómo el poder de la tecnología puede ayudarle a hacer su trabajo ", dice Nicole Anasenes, CFO de la empresa especialista en soluciones de software Infor. "Las presiones sobre el CFO no son tan diferentes de lo que siempre han sido, pero la interconexión del mundo y la tasa de cambio se suman a ellas" En el mundo empresarial actual, Anasenes dice , el CFO se preocupa por la reducción de costes, velocidad y flexibilidad - todo de una manera segura . La tecnología, en particular el cloud computing, es la clave para mejorar en esas tres áreas. Es importante tener en cuenta que el CIO y la línea de los líderes empresariales a menudo defienden diferentes puntos de vista. En general, el CIO tiende a ver el mundo a través de una lente de la contención de costos y seguridad y buscará almacenamiento de precios accequibles. El resto de los líderes empresariales , en cambio, se centran más en los proyectos de generación de ingresos en el espacio de análisis . En ese contexto , los directores financieros deben tratar de fortalecer las relaciones en toda la empresa y tomar ventaja de la tecnología Tomado de: http://www.cio.com/article/753147/Does_the_CFO_Need_to_Become_a_Technologist_?page=2&taxonomyId=3157

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  • ¿Qué es Social Cloud o computación en la nube social?

    - by RED League Heroes-Oracle
    La computación en nube es la creación de nuevas posibilidades para las empresas en sus negocios, como acercarse a los clientes a través de herramientas digitales. Es cruzar informaciones del registro de los clientes almacenadas en los servidores de la empresa, con informaciones sociales, o sea, con informaciones disponibles en la internet (redes sociales, blogs, geolocalización). Este cruce, seguramente, puede ayudar a entender mejor el comportamiento de sus consumidores y, a través de estos análisis, tomar diferentes acciones para estar cada vez más cerca de ellos o entender nuevas necesidades. El comportamiento de consumo se está alterando con el avance de la internet y de las nuevas tecnologías. Integrar estas nuevas tecnologías al negocio de la empresa es una gran oportunidad para acompañar los consumidores y observar nuevos patrones de comportamiento. Estos nuevos patrones pueden presentar nuevas oportunidades. Utilizar la computación en la nube para agregar conocimiento adicional a los que ya lo poseen puede ser una de las claves para la transformación de la realidad de la empresa. Actualmente, ¿cómo se comportan tus consumidores? ¿Qué suelen hacer? ¿Viajan mensualmente? ¿Tienen hijos? ¿Están buscando nuevos productos? ¿Qué productos buscan? ¿Dónde la mayor parte de tus consumidores está en el momento de ocio? ¡Saber dónde están en el momento de ocio puede ser una excelente oportunidad para que vean tu marca! ¿Cómo tratas hoy en día esos temas? ¡Las soluciones de Social Cloud de Oracle pueden ayudarte! Aprovecha y descarga GRATUITAMENTE el e-book – Simplifica tu movilidad empresarial y conoce el poder de transformación de la movilidad en tu negocio. LINK PARA DESCARGA: http://bit.ly/e-bookmobilidad

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  • O que é Social Cloud ou computação em nuvem social?

    - by RED League Heroes-Oracle
    A computação em nuvem está criando novas possiblidades para as empresas em seus negócios, como aproximar-se dos clientes através de ferramentas digitais. Cruzar informações do registro dos clientes armazenadas nos servidores da empresa, com informações sociais, ou seja, com informações disponíveis na internet (redes sociais, blogs, geolocalização). Este cruzamento, certamente, pode ajudar a entender melhor o comportamento de seus consumidores e, através destas análises, realizar diferentes ações para estar cada vez mais próximo ou entender novas necessidades. O comportamento de consumo vem se alterando com o avanço da internet e das novas tecnologias. Integrar estas novas tecnologias ao negócio da empresa é uma grande oportunidade para acompanhar os consumidores e observar novos padrões comportamentais. Estes novos padrões podem apresentar novas oportunidades. Utilizar a computação em nuvem para agregar conhecimento adicional aos que já o possuem pode ser uma das chaves para a transformação da realidade da empresa. Atualmente, como seus consumidores se comportam? O que eles costumam fazer? Viajam mensalmente? Possuem filhos? Estão em busca de novos produtos? Quais produtos buscam? Onde a maior parte de seus consumidores está na hora do lazer? Saber onde estão na hora do lazer pode ser uma ótima oportunidade para que sua marca seja vista! Como você endereça hoje essas questões? As soluções de Social Cloud da Oracle podem te auxiliar! Aproveite e baixe gratuitamenteo e-book – Simplifique sua mobilidade empresarial. E conheça o poder transformacional da mobilidade em seu negócio. LINK PARA DOWNLOAD: http://bit.ly/e-bookmobilidade

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  • How to break terrain (in blender) into Chunks for a game engine

    - by Red
    I've created an island in blender. 2048x2048 blender units. The engine developer wants me to split the terrain into 128x128 "chunks" so that would be 16x16 "chunks" from a top down view. The engine isn't using height maps, in order to allow caves, 3d overhangs, etc. I'm not in charge of the engine, so suggestions about that aren't needed here :/ I just need a good, seamless way to split a terrain mesh into 16x16 pieces without leaving holes. I'm very new to blender, so baby steps are very much welcomed :) Here's a quick render of what i've got so far. I added a plane to show sea level but i've since removed it. http://i.imgur.com/qTsoC.png

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  • El CFO como agente de cambio

    - by RED League Heroes-Oracle
    "El Director Financiero es ahora visto como un catalizador de negocios ... Y es al CFO a quien las empresas buscan en su intento de aprovechar la tecnología para obtener una ventaja competitiva" EL CFO impulsa la Innovación en el Negocio a través de Estrategias de Inversión Personalizada No es ningún secreto que la Nube, las redes sociales , los grandes datos , las aplicaciones móviles y otras tecnologías disruptivas están trayendo cambios sin precedentes a las empresas de hoy en día . Pero mientras que la tecnología está proporcionando la chispa necesaria para el cambio, no toda la transformación está ocurriendo en el interior del departamento de TI. Los modelos financieros que sustentan las inversiones en las últimas tecnologías también están experimentando convulsiones. Las estrategias más recientes están aprovechando los futuros ingresos o ahorros esperados de las inversiones para financiar las innovaciones empresariales actuales. Esto ayuda a explicar por qué la línea de los Ejecutivos de negocios pueden están involucrados directamente en el 80 por ciento de las nuevas inversiones en TI para el 2016, un 58 por ciento más que en 2013 de acuerdo con la organización de investigación IDC. Por ejemplo, algunas organizaciones ya no sólo financian proyectos de nuevas tecnologías a partir de los presupuestos de TI exclusivamente. Los directores financieros a la vanguardia de la modernización se tornan a estas soluciones para desarrollar estrategias creativas que financien la innovación empresarial con nuevos recursos. “El director financiero es ahora más probable que sea visto como un catalizador del negocio, es decir, un agente de cambio y una valiosa fuente de experiencia e ideas ", afirman los vicepresidentes de Oracle, John O'Rourke y Karen Dela Torre en el documento Empoderando la Organización Financiera Moderna. Los CFOs como agentes de cambio requieren de opciones de inversión flexibles y sofisticadas para ayudar a sus organizaciones a capitalizarse rápidamente en las aperturas de competitividad. Obtenga más información aquí: http://bit.ly/1pBh7Ug

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  • Kernel panic: "Machine check: processor context corrupt" after install

    - by Red
    I am new to Linux and I am having issues installing. I have tried multiple versions and all seem to give me the same issue. The LiveCD worked and I used it to install Ubuntu alongside Windows 7. Here's a few screen shots of what I get. I am currently trying to install most the most recent version of Ubuntu. System specs: x58 motherboard 12GB RAM Core i7 processor 2 Nvidia GTX 580 video cards in SLI configuration Thanks in advance and please feel free to simplify your answers as I am pretty new at this.

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  • Need help with download/installation Ubuntu 14.04.1 [duplicate]

    - by Chuck Red
    This question already has an answer here: How to install with Wubi when it says “Could not retrieve the required disk image files”? 2 answers I have downloaded Ubuntu 14.04.1 but when I try to run the installation I keep getting the below error message Could not retrieve the required installation files. For more information, please see the log file: c:\users\prise\appdata\local\temp\wubi-14.04-rev286.log. I will be glad to get your help.

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  • Simplifique sua mobilidade empresarial

    - by RED League Heroes-Oracle
    Por muitos anos, os departamentos de TI das empresas deram maior atenção aos computadores (desktops e notebooks), para que estes pudessem trabalhar com as aplicações de negócios. Com o advento da computação móvel, as aplicações passaram a não estar vinculadas somente aos computadores. Hoje os usuários buscam usar ou acessar as aplicações da empresa através de tablets ou smartphones a qualquer hora, em qualquer lugar. VIVEMOS EM UM AMBIENTE MULTICANAL. Este novo ambiente traz novas oportunidades e desafios, confira neste e-book como a Oracle pode auxiliar você e sua empresa nesta nova era.

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  • Simplifique su mobilidade empresarial

    - by RED League Heroes-Oracle
    Durante muchos años, los departamentos de TI de las empresas dieron más atención a las computadoras (desktops y notebooks), para que estas pudieran trabajar con las aplicaciones de negocios. Con el advenimiento de la computación móvil, las aplicaciones comenzaron a estar vinculadas no solamente a las computadoras. Actualmente los usuarios buscan usar o acceder a las aplicaciones de la empresa a través de tabletas o teléfonos inteligentes a cualquier hora, en cualquier lugar.  VIVIMOS EN UN AMBIENTE MULTICANAL. Este nuevo ambiente trae nuevas oportunidades y desafíos, ve en este e-book como Oracle puede ayudarte a ti y a tu empresa en esta nueva era. Descarga aquí:

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