New answers tagged

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Let your graph be a union of a path and a "half complete graph". A "half complete graph" (sorry for the silly name) is a graph, where you connect each node to all other nodes with higher id (eg. 1 -> 2, 1 -> 3, 2 -> 3). This guarantees a big number of edges (due to the "half complete graph") and a long shortest path because of the path. You can ...


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Use type attribute in graph tag.for fields you can use operator. <graph type="pivot"> <field name="TYPE"/> <field name="NBR" operator="+"/> </graph>


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No the answer should be 3 in this case.. It doesn't fail here


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Here is a javascript function I wrote to round grid intervals (max-min)/gridLinesNumber to beautiful values. It works with any numbers, see the gist with detailed commets to find out how it works and how to call it. var ceilAbs = function(num, to, bias) { if (to == undefined) to = [-2, -5, -10] if (bias == undefined) bias = 0 var numAbs = ...


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The UIViewController can be redefined with this variable: @IBOutlet var View1: GonGraphUIView! and in GonGraphUIView var graphPoints:[Int]? and then in drawRect if let graphPoints = graphPoints { // draw the graph } else { do nothing } so UIViewController can say View1.graphPoints = dataMoneyTracker1 View1.setneedsDisplay()


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There are 2 ways to solve this problem. The easiest one is to define var dataMoneyTracker1 = [Int]() outside of any class, and then you can always access it. Or you can make it a class variable and then you can access it: class GonDetailViewController: UIViewController{ static var dataMoneyTracker1 = [Int]() } class GonGraphUIView : UIView{ var ...


3

A counter-example: Obviously, graph diameter is 4 (distance from A to C), but with starting vertex B you will have S = {D}, and all vertices are within range 3 from D. This graph contains 7 vertices. You can add extra vertices (inside the triangle) without breaking the counter-example to get a graph of size 8, 9, ...


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Here is a counter-example: Obviously, the graph has diameter 16 (from c to d). If you start at a, the set S contains of solely b. The vertex with maximum minimal distance to b is e. Hence, the algorithm would return the graph diameter 11.


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JUNG Layout instances determine vertex positions, not edge positions; edge rendering is determined automatically based on the edge shape that you use and the number of connecting edges. JUNG Tree objects, however, can only have one edge connecting any pair of vertices (otherwise it's not a tree). So if you want a Graph whose vertices are laid out using ...


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Here's the code. I'm assuming that in-degree centralization is defined as I describe below... N=G.order() indegrees = G.in_degree().values() max_in = max(indegrees) centralization = float((N*max_in - sum(indegrees)))/(N-1)**2 Note I've written this with the assumption that it's python 2, not 3. So I've used float in the division. You can adapt as ...


0

The reason is this line: annual.Series["close"].Points.AddXY((DateTime.ParseExact(a[i].Date, "yyyyMMdd", null).ToString("yyyy/MM/dd")), a[i].close); The ParseExact method returns DateTime which would be fine, but then you re-format it back to string again! X-Values always contain double, either coming from numbers or from DateTime ...


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Consider the farthest corner of the field from the specimen. For example, if the specimen is in the corner (1,1) than the farthest corner would be (n,m). Let's say the distance to this corner is dX along the x axis and dY along the y axis. The most important insight is, that no matter which strategy you chose, you would need at least dX+dY steps to ...


2

Yes, that can be done quite easily. What you need is a BarChart with multiple BarDataSets where each set (in your case) represents one sex (men or women). Here is an example of how to create a BarChart with multiple DataSets Here is an tutorial of how to use MPAndroidChart with Realm.io Example code (without realm.io) List<String> xValues = ...


2

is it possible to display a Bar Graph in android? Yes, it is possible. like displaying two sets of data using a Bar Graph. is there any libraries for this? Yes, use MPAndroidChart library for Bar Graph. check link of MPAndroidChart. You can generate BarGraph as in below image How to use this library in Android Studio: Add the following ...


0

Try making a distinct iterator, and use that, rather than iterating over the table list itself. It's just easier to see what's going on. For example: pdf("Myhistograms.pdf") for(i in 1:length(popTables)){ table = popTables[[i]] name = popNames[i] pVals = table$p hist(pVals, breaks=20, xlab="P-val", main=name)) } dev.off() In this ...


1

You could try using arrayformula in your other columns as these will automatically adjust to include new Form submissions. For example, try pasting these into row 2 of your response sheet: =ArrayFormula(IF(LEN(A2:A),WEEKNUM(A2:A),)) =ArrayFormula(IF(LEN(A2:A),MONTH(A2:A),))


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You can look into Breadth-first search, which goes through a graph layer by layer because it uses a queue to store its newly discovered nodes.


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I read through the api documents of this JGraphx anf found interesting property from xGraph class: mxGraph.prototype.resetEdgesOnMove: Specifies if edge control points should be reset after the move of a connected cell. Default is false. I would try to toggle that and see if it may or not help in this situation. At least this affects to edges ...


1

One approach would be to customise the axis label insets (that is, increase the space below each axis label). http://www.jfree.org/jfreechart/api/javadoc/org/jfree/chart/axis/Axis.html#setLabelInsets-org.jfree.ui.RectangleInsets-


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this was my solution but from some reason it wasn't accepted: public static Employee closestCommonManager(Employee ceo, Employee firstEmployee, Employee secondEmployee) { // Implement me var Manager = ceo.getReports(); Employee tempEmployee = ceo; foreach (var HisReporter in Manager) { if (HisReporter.Equals(firstEmployee) || ...


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yFiles is a suite of layout algorithms that offers the broadest range of different automatic sophisticated layout styles. It's a commercial offering and is available for several popular platforms and languages: Javascript, Java, C#, and more. There is an interactive online demo that shows many of the available algorithms and the libraries can be evaluated ...


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Here is an example: // two variables we will need: Button lastBtn = null; List<Tuple<Button, Button>> buttons = new List<Tuple<Button, Button>>(); void commonButton_Click(object sender, EventArgs e) { Button btn = sender as Button; if (btn == null) return; if (lastBtn == null) { lastBtn = btn; return; } else if (btn ...


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You are creating the TreeLayout with the default x and y spacing. Try increasing the spacing: http://jung.sourceforge.net/doc/api/edu/uci/ics/jung/algorithms/layout/TreeLayout.html#TreeLayout(edu.uci.ics.jung.graph.Forest, int, int)


0

This question is related to ORecordBytes. What should be the type of the property? EMBEDDEDLIST? EMBEDDEDSET? LINKLIST? LINKSET? Also what should be the type for the linked class should be? see the below example. Not sure what goes in as parameter to these methods. prop.setType(OType.LINKLIST); prop.setLinkedClass("ORecordBytes");


1

This should return all A nodes that have no connected B nodes with a false prop: MATCH (a:A) OPTIONAL MATCH (a)-[*]->(b:B { prop: false }) WITH a, COLLECT(b) AS bs WHERE SIZE(bs)= 0 RETURN a; Here is a console showing this query.


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How about shifting the positions in pos2 with the desired value? A working example would be import networkx as nx import matplotlib.pyplot as plt G1 = nx.balanced_tree(2,1) G2 = nx.balanced_tree(2,2) elarge1 =[(u,v) for (u,v,d) in G1.edges(data=True)] elarge2 =[(u,v) for (u,v,d) in G2.edges(data=True)] pos1=nx.spring_layout(G1) ...


0

to get a clearer idea of the utility of the Time Series, you could imagine this casuistry: You have a given log related to a certain date. In the case where the DB had millions of records, a search through the date field would be very expensive as it would force the query to read all the records and check the condition, while with the time series filtering ...


0

The color depends on the scale of the z-axis. If you manually set the axis range from 0-100 while all your data has values in the range 90-100, all data points will be red, and the graph looks almost flat. If you let the scale be determined automatically, it will just fit the data and scale the colors from min value (90) to max value (100).


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Maybe try the simplest solution first. Breadth-first search the graph (+ a set of visited nodes to break up cycles). Put nodes of equal color into arrays in the order you encounter them. Then compare the arrays either as linear sequence or use longest common sequence. Note that a node might have a different parent but the same position in the array, so ...


1

The runtime of the traversal is bounded by the amount of vertices and edges actually touched in the process. So the runtime of the traversal depends on the depth of the paths and the branching factor (how many of those vertices with multiple parents are expected). The problem with the construct you describe is that the traversal will pick one path from 1 to ...


2

Does this work? MATCH (a:A) OPTIONAL MATCH (a)-[*]->(b:B {prop: false}) WITH a, b WHERE b IS NULL RETURN a


0

09/30/2011 + 32 days = 11/01/2011, so your example doesn't work. You probably meant 31 days or less. When working with dates in python, you can use datetime and timedelta from the datetime module. Use strptime and strftime to convert from/to strings like '09/01/2011'. I prefer to convert everything to datetime's at the beginning, do all the date related ...


0

I don't have enough points ask this via comment yet, so I'm going to assume n is the number of vertices and m is the number of edges. By sorting by names of vertices, I'm going to assume you mean you want to sort alphabetically. If that's the case, then you might be able to use linear time sorting algorithms to achieve O(n+m), namely Radix sort. As long as ...


0

I don't believe this is possible. Your request for O(n+m) time suggests that you are looking for a topological sort of the graph. But while that will order the graph, it doesn't allow for the comparisons necessary to order the nodes/edges by another metric (the string node name). Perhaps you have not stated the problem precisely?


1

The issue is that you have set schema.default=none in your titan-cassandra.properties file, so automatic schema creation is disabled. When automatic schema creation is disabled, you need to define the schema (including all labels, properties, and indexes on vertices and edges) before you can use them. Please refer to Chapter 5: Schema and Data Modeling in ...


0

I thought about your question, and I originally wrote a routine that would map the date intervals into a 1D binary array, where each entry in the array is a day, and consecutive days are consecutive entries. With this data structure, you can perform dilation and erosion to fill in small gaps, thus merging the intervals, and then map the consolidated ...


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Edit: the original 'problem' condition I identified was wrong, corrected now There's a problem with how you set counter and levels. Assuming R is the root node, A, B and C are other nodes, your code is currently having an issue when R <-> A A <-> B R <-> B B <-> C And the relationships are evaluated in that order. It thinks the ...


1

While Erick's answer is correct, it is not very efficient. If you want to calculate the degree of all nodes in a graph, and you want to store that in a map keyed by degrees, a faster algorithm would be the following: public static Map<Integer, ArrayList<Node>> nodesByDegree( Collection<Edge> edges, Collection<Node> nodes) { ...


1

Working Assumptions It looks from your code as if the type Nodes represents a single node, and Node represents a Collection of nodes. (And that assumption was confirmed by your edit.) Those names seem backwards, but I'm going by what the code is doing with them. Please correct me if I'm wrong. The Immediate Question There are several problems here, but ...


0

this exception occur when you add child to one parent and same child to another parent, as in your case g2.addEdge("Edge-4-5-P", 4, 5); g2.addEdge("Edge-3-5-P", 3, 5); try to add unique child. specifically in TreeLayout. try another Layout, but i have not tried another layout yet.


1

Instead of only adding new ticks after each hour you have to generate the complete tick array after every update with something like this (updated fiddle): var first_hour = data_speed_hour[0][0]; options_hour.xaxis.ticks = [ first_hour, first_hour + 3600000*1, first_hour + 3600000*2, first_hour + 3600000*3, first_hour + 3600000*4, ...


0

I miss the code part the 'seriesDefaults:' rendererOptions:{ fillToZero: true } Now I include this one. To display the negative values correctly.


-1

This is due to this: http://docs.python-guide.org/en/latest/writing/gotchas/#mutable-default-arguments Python’s default arguments are evaluated once when the function is defined, not each time the function is called (like it is in say, Ruby). This means that if you use a mutable default argument and mutate it, you will and have mutated that object for ...


1

In this query, p1 is the "query context", and p2 is all other people. A result row will only have the bar property if p1 and p2 have met. MATCH (p1:Person { name: 'Fred' }),(p2:Person) USING INDEX p1:Person(name) WHERE p1 <> p2 RETURN CASE WHEN (p1)-[:Met]-(p2) THEN { name: p2.name, foo: p2.foo, bar: p2.bar } ELSE { name: p2.name, foo: ...


0

You could do something like this whereby you match the first person and then optionally match the second person connected to the first via the :MET relationship. If the relationship exists then the results set you return could have more sensitive data in it. match (p1:Person {name: '1'}) with p1 optional match (p1)-[r:MET]->(p2:Person {name: '2'}) with ...


0

Ok after some time I managed to understand what you wanted with this question. So you don't need to write any extra VBA code for that to work. Gephi does this automatically for you. For example if you have Source Target Weight 12 20 1 12 20 2 13 12 1 After you import the edge file into Gephi you ll get Source ...


1

Here's my proposed solution, which I find to be overwrought considering how the problem is relatively straightforward: library(magrittr) find_relationships <- function(known_nodes, d){ # takes a vector of ids, known_nodes, and data consist of ids, d subset(d, A %in% known_nodes | B %in% known_nodes) %>% unlist %>% c(known_nodes) %>% ...


1

The cypher.execute() function does not take a result handler as argument. It takes query parameters either as a dictionary or as keyword arguments. These parameters are then sent to neo4j as JSON. Your handle_row function is not JSON serializable, hence the TypeError. To do something with all your nodes try this: result = graph.cypher.execute('MATCH ...


1

You're graphing the total number of bytes/packets sent/received since the interface was started. This number will only ever increase. If you want to see these as a rate (eg bytes per second) then you will need to use Influx's DERIVATIVE(1s) function: SELECT derivative("bytes_recv", 1s) FROM "net" WHERE "host" = '1.2.3.4' AND "interface" = 'eth0'


0

Feel free to choose any method to calculate mincuts computationally from graphs! I list below the relevant research, models, storage methods, lemmas, theorems -- and some something about visualisation and computing on which this thread is focused on. Computing General question How to analyse a sparse adjacency matrix? but relevant because graphs often are ...



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